US20060088596A1 - Solubilizing a drug for use in a coating - Google Patents

Solubilizing a drug for use in a coating Download PDF

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US20060088596A1
US20060088596A1 US11/236,977 US23697705A US2006088596A1 US 20060088596 A1 US20060088596 A1 US 20060088596A1 US 23697705 A US23697705 A US 23697705A US 2006088596 A1 US2006088596 A1 US 2006088596A1
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Prior art keywords
acid
coating
tocotrienol
tocopherol
bio
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US11/236,977
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Roger Labrecque
Geoffrey Moodie
Lisa Rogers
Joseph Ferraro
Theodore Karwoski
Steve Herweck
Paul Martakos
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Atrium Medical Corp
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Atrium Medical Corp
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Priority to US11/236,977 priority Critical patent/US20060088596A1/en
Assigned to ATRIUM MEDICAL CORPORATION reassignment ATRIUM MEDICAL CORPORATION ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: HERWECK, STEVE A., MARTAKOS, PAUL, FERRARO, JOSEPH, KARWOSKI, THEODORE, LABRECQUE, ROGER, MOODIE, GEOFFREY, ROGERS, LISA
Publication of US20060088596A1 publication Critical patent/US20060088596A1/en
Abandoned legal-status Critical Current

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    • A61K47/06Organic compounds, e.g. natural or synthetic hydrocarbons, polyolefins, mineral oil, petrolatum or ozokerite
    • A61K47/08Organic compounds, e.g. natural or synthetic hydrocarbons, polyolefins, mineral oil, petrolatum or ozokerite containing oxygen, e.g. ethers, acetals, ketones, quinones, aldehydes, peroxides
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    • A61L2300/00Biologically active materials used in bandages, wound dressings, absorbent pads or medical devices
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    • A61L2300/00Biologically active materials used in bandages, wound dressings, absorbent pads or medical devices
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    • A61M25/0045Catheters; Hollow probes characterised by structural features multi-layered, e.g. coated

Definitions

  • the present invention relates to coatings and preparations of coatings for medical devices for the delivery of one or more biologically active agents, and more particularly, the present invention relates to coatings capable of containing one or more biologically active components.
  • PTCA Percutaneous transluminal coronary angioplasty
  • balloon angioplasty is a technique widely used for treating intravascular diseases, such as atherosclerosis, and other vascular occlusions.
  • PTCA involves the use of a balloon-tipped catheter inserted directly into the arteries and vessels of a subject until the occluded site is reached, whereupon the balloon is expanded. The inflation of the balloon forces the lumen open, allowing blood flow to be restored.
  • PTCA is effective in the short-term, approximately 30-50% of all cases of balloon angioplasty alone require follow-up angioplasty due to restenosis, or re-narrowing of the blood vessel or artery.
  • Restenosis is caused by three pathogenic factors: elastic recoil of the artery, late-stage remodeling of the artery and hyperproliferation of the smooth muscle cells of the artery.
  • This hyperproliferation called neointimal hyperplasia, occurs as a result of the body's natural response to the arterial injury caused by the PTCA procedure.
  • small tears develop in the artery wall triggering an inflammatory response.
  • Growth factors and cytokines produced during the inflammatory response activate smooth muscle cell proliferation and migration, which can form an obstructing neointima, which, in turn, leads to decreased blood flow through the artery.
  • Prevention of occlusive thrombus after PTCA can be accomplished by the administration of oral high-dose, systematic anti-platelet drug therapy in combination with aspirin. This course of action has been shown to limit early complications after PTCA by approximately 35%; however, serious bleeding complications and other side effects can occur. Additionally, an orally administered drug may not achieve the desired effect in the area of the body in which it is needed. Furthermore, success by oral medication depends entirely on patient compliance.
  • a medical device such as a stent
  • a stent as an arterial structural support.
  • deployment of a stent after PTCA effectively eliminates elastic recoil and counteracts arterial remodeling
  • in-stent restenosis is still a serious problem due to neointimal hyperplasia.
  • Introduction and presence of the stent itself can create regions of trauma in the artery, causing the same inflammatory response as the PTCA procedure.
  • Stent-based drug delivery has been developed in an attempt to prevent in-stent restenosis.
  • Local delivery of one or more therapeutic agents by the use of a drug-eluting stent shows promise as a solution to the problems of both early and late complications due to the PTCA procedure.
  • a number of therapeutic agents have been studied for use with stents including anticoagulants (heparin, hirudin), anti-platelet agents (abciximab), anti-inflammatory drugs (dexamethasone), anti-migratory agents (batimastat) and anti-proliferative agents (sirolimus, paclitaxel, actinomycin D).
  • the drug-eluting stent is coated with a polymeric material.
  • the polymer may improve the quality of the stent by strengthening it or by smoothing the surface of the stent to minimize damage to the endothelium.
  • the polymer may serve as the component used to adhere the therapeutic agent to the stent itself.
  • the polymer may serve as the vehicle for local drug delivery, for example, by serving as a drug depot and/or degrading such that the drug is released to the desired area.
  • a coating is needed to replace the functions performed by the polymer.
  • a coating is needed to dissolve the therapeutic agent, as well as serve as the element to adhere the therapeutic agent to the stent.
  • the coating would also be the vehicle for local delivery for the therapeutic agent.
  • U.S. Patent Application Publication No. 20030191179 is directed to a method of administration of paclitaxel formulated with a vitamin E derivative.
  • the composition for delivery of paclitaxel comprises paclitaxel, a solvent, and a pharmaceutically acceptable, water-miscible solubilizer which has the general structure of R 1 COOR 2 , R 1 CONR 2 and R 1 COR 2 , wherein R 1 is a hydrophobic C 3 -C 50 alkane, alkene or alkyne, and R 2 is a hydrophilic moiety.
  • the publication indicates that the solubilizer can be an esterified fatty acid or alpha-tocopherol polyethylene glycol succinate, which is a water-miscible derivative of alpha-tocopherol.
  • PCT Application Publication No. WO 99/25336 is directed to a method for preventing restenosis in a patient by administering a prophylactically effective amount a composition of a tocotrienol or a mixture of tocotrienols.
  • the publication is additionally directed to a method for preventing restenosis in a patient undergoing arterial angioplasty by coating the external surface of the angioplastic balloon with a composition containing tocotrienols.
  • These compositions are prepared by combining one or more tocotrienols with an acceptable carrier. Suitable carriers include glycols, parabens, glycerin, alcohols, petrolatum oils and waxes.
  • the '336 patent application treats the tocotrienols as the therapeutic agent for treating restenosis that is contained within a carrier component.
  • U.S. Patent Application Publication No. 20040156879 is directed to a method of manufacturing oxidation resistant medical implants and, in particular, antioxidant-doped medical devices containing cross-linked polymers.
  • the method includes doping consolidated polyethylene, such as ultra-high molecular weight polyethylene (UHMWPE), with anti-oxidants before, during or after crosslinking the consolidated polyethylene.
  • UHMWPE ultra-high molecular weight polyethylene
  • the patent application indicates that the doping of the consolidated polyethylene can be carried out by diffusion of an antioxidant. Suitable antioxidants include alpha- and delta-tocopherols; propyl, octyl, or dedocyl galates; lactic, citric, and tartaric acids and their salts; orthophosphates, tocopherol acetate and vitamin E.
  • the doping method involves soaking the consolidated UHMWPE in the antioxidant or in a solution of the antioxidant when the antioxidant is dissolved in ethanol.
  • the '879 patent application calls for
  • U.S. Pat. No. 6,833,004 is directed to a stent with a biologically and physiologically active substance stably loaded onto the stent main body such that the biologically and physiologically active substance does not decompose or degrade, but, once implanted, the biologically and physiologically active substance undergoes sustained release.
  • the stent includes a main body with a sustained release coating made up of two layers: a layer containing the biologically and physiologically active substance and a polymer layer formed on top of the biologically and physiologically active substance layer.
  • the layer containing the biologically and physiologically active substance can be supplemented with an additional component which will impart tackiness to the biologically and physiologically active substance.
  • the additional component is a low molecular weight higher fatty acid having a molecular weight of up to 1000, such as a fish oil, a vegetable oil or a fat soluble vitamin such as vitamin A or vitamin E.
  • the medical device in the '004 patent is treated with a polymeric layer after the application of the biologically and physiologically active substance, with or without the additional component.
  • U.S. Pat. No. 6,117,911 is directed to the use of compounds and different therapies for the prevention of vascular and non-vascular pathologies.
  • the '911 patent discusses the possibility of using many different types of delivery methods for a therapeutic agent or agents to prevent various vascular and non-vascular pathologies.
  • One such approach is described as providing a method of preventing or treating a mammal having, or at risk of developing, atherosclerosis, including administering an amount of a combination of aspirin or an aspirinate and at least one omega-3 fatty acid, wherein said amount of omega-3 fatty acid is effective to maintain or increase the level of TGF-beta so as to provide a synergistic effect with a therapeutic compound to inhibit or reduce vessel lumen diameter diminution.
  • the patent discusses some of the therapeutic benefits of primarily systemic administration of omega-3 fatty acids, such as those found in fish oil, to affect TGF-beta levels when a therapeutic agent is combined with aspirin or aspirinate. That is, the dose or concentration of omega-3-fatty acid required to increase the level of TGF-beta is significantly greater, requiring long term systemic delivery.
  • U.S. Patent Application No. 20030077310 is directed to coated stents, methods of making coated stents and methods of using coated stents, wherein the coating contains unreacted HMG-CoA reductase inhibitor in combination with a carrier.
  • the carrier can either be polymeric or non-polymeric. When the carrier is non-polymeric, it can be a C6 to C18 fatty acid, a bio-compatible wax, oil or gel, or a mixture of one or more of a wax, an oil, a gel, and a fatty acid.
  • the non-polymeric liquid carrier can also be a hydrophobic liquid, such as a C4-C36 fatty acid, for example, oleic or stearic acid, or an oil, such as peanut oil, cottonseed oil, mineral oil, or other low molecular weight oils (C4-C36).
  • a hydrophobic liquid such as a C4-C36 fatty acid, for example, oleic or stearic acid, or an oil, such as peanut oil, cottonseed oil, mineral oil, or other low molecular weight oils (C4-C36).
  • U.S. Pat. No. 6,610,035 is directed to an implantable medical device with a bi-layer lubricious coating.
  • the first layer consists of a hydrophilic polymeric hydrogel layer which can swell or dissolve upon exposure to an aqueous environment.
  • the second layer of the coating comprises a hydrophobic coating, which can be silicone based or a naturally occurring composition including olive oil, paraffin oil, corn oil, sesame oil, fish oil, and vegetable oil.
  • the medical devices described by the '035 patent are treated with a hydrophilic polymer gel prior to the addition of a hydrophilic coating.
  • U.S. Patent Application No. 20030083740 is directed to a method of forming liquid coatings for medical devices made from biodegradable materials in liquid, low melting solid or wax forms which further degrade upon implantation without producing harmful fragments.
  • the liquid coatings additionally can contain biologically active compounds which are released upon degredation of the coatings after implantation.
  • the carrier component of the coating composition can be hydrophobic, bio-compatible and either polymeric or non-polymeric. Suitable non-polymeric carrier components comprise vitamin E or its derivatives, oleic acid, stearic acid, mineral oil, peanut oil, or cottonseed oil, alone or in combination.
  • U.S. Pat. No. 6,610,068 is directed to a catheter device with a guide member lumen filled with a lubricious material.
  • the method of filling the guide member lumen with a lubricious material eliminates the need for flushing the catheter device before and during surgical procedures and provides a lubricant for easy maneuvering of the catheter over the guide member.
  • the '068 patent indicates that the lubricious material can include both hydrophobic and hydrophilic materials.
  • the hydrophobic materials can include silicone based lubricants, glycerine, olive oil, cottonseed oil, peanut oil, fish oil, vegetable oil, sesame oil, and vitamin E.
  • Vitamin E if used, can also act as an antioxidant. The antioxidant capability of vitamin E improves the long term stability of the lubricious coating.
  • PCT Application Publication No. WO 02/100455 is directed to ozonated medical devices and methods of using ozone to prevent complications from indwelling medical devices.
  • the application discusses having the ozone in gel or liquid form to coat the medical device.
  • the ozone can be dissolved in olive oil, or other types of oil, to form a gel containing ozone bubbles, and the gel applied to the medical device as a coating.
  • the application later asserts a preference for the gel or other coating formulation to be composed so that the ozone is released over time.
  • there is no indication in the application as to how a slow controlled release of ozone can be affected.
  • Another aspect of the study looked at the efficacy of drug loaded biological stents to decrease inflammation and neointimal hyperplasia in a porcine coronary stent model.
  • glue or modified glue (biological oil) coated stainless steel stents were loaded with different drugs.
  • the result was that the characteristics of the particular drug loaded onto the stent were the major factor to the reduction of restenosis, and the biological oil did not have a major impact on either causing or reducing inflammation.
  • a series of stents coated in eicosapentaenoic acid oil and bare stents were implanted into test subjects and were analyzed after 5 days and again after 4 weeks. In all cases, there was an identical tissue response between the bare stents and the eicosapentaenoic acid oil coated stents. It was also found that the oil-coating did not elicit a hyperproliferative or inflammatory response. The study proposed that the lack of inflammation or hyperproliferation of the coated stent was due to the properties of eicosapentaenoic acid, which exerts anti-inflammatory effects and inhibit vascular smooth muscle cell proliferation in vitro.
  • Another aspect of the study compared eicosapentaenoic acid oil coated stents with stents coated with a therapeutic agent solubilized in eicosapentaenoic acid oil.
  • the therapeutic agent examined was cytochalasin D, a lipophilic, cell-permeable fungal metabolite that inhibits the polymerization of actin into microfilaments.
  • PCT Application Publication No. WO 03/039612 is directed to an intraluminal device with a coating containing a therapeutic agent.
  • the publication describes coating an intraluminal device with a therapeutic agent comprised of a matrix that sticks to the intraluminal device.
  • the matrix is formed of a bio-compatible oil or fat, and can further include alpha-tocopherol.
  • the publication further indicates that an oil or fat adheres sufficiently strongly to the intraluminal device so that most of the coating remains on the intraluminal device when it is inserted in a body lumen.
  • the publication further states that the oil or fat slows the release of the therapeutic agent, and also acts as an anti-inflammatory and a lubricant.
  • the publication goes on to indicate that the oil or fat can be chemically modified, such as by the process of hydrogenation, to increase their melting point. Alternatively, synthetic oils could be manufactured as well.
  • the oil or fat is further noted to contain fatty acids.
  • the '612 publication provides additional detail concerning the preferred oil or fat. It states that a lower melting point is preferable, and a melting point of 0° C. related to the oils utilized in experiments.
  • the lower melting point provides a fat in the form of an oil rather than a wax or solid.
  • oils at room temperature can be hydrogenated to provide a more stable coating and an increased melting point, or the oils can be mixed with a solvent such as ethanol. Preferences were discussed for the use of oils rather than waxes or solids, and the operations performed on the fat or oil as described can be detrimental to the therapeutic characteristics of some oils, especially polyunsaturated oils containing omega-3 fatty acids.
  • U.S. Pat. No. 6,761,903 is directed to pharmaceutical compositions capable of solubilizing therapeutically effective amounts of therapeutic agents.
  • the patent discusses pharmaceutical compositions having a carrier and a therapeutic agent, as well as pharmaceutical composition comprising an oil soluble vitamin and a carrier.
  • the carrier for both pharmaceutical compositions includes a triglyceride in combination with at least two surfactants, wherein one of the surfactants is hydrophilic.
  • Suitable triglycerides include a number of oils, including fish oil, while suitable surfactants include a variety of fatty acid ester derivatives and polymers, transesterified products of oils and alcohols, mono- and diglycerides, sterols, sterol derivatives, polymer glycol alkyl ethers and alkyl phenols, sugar esters, POE-POP block co-polymers, and ionic surfactants, such as the salts of fatty acids and bile salts.
  • the '903 patent further discusses the use of oil-soluble vitamins for improving the solubility and stability of therapeutic agents in the pharmaceutical compositions, and that there may be improved absorption or permeability of the therapeutic agents across an absorption barrier, such as a mucosal membrane.
  • bio-absorbable delivery agent having non-inflammatory and other therapeutically advantageous characteristics that is able to dissolve at least one therapeutic agent for the delivery of that therapeutic agent to body tissue.
  • a method for dissolving an amount of one or more therapeutic agents in a bio-absorbable carrier component and a vitamin E compound can include: (a) identifying said therapeutic agent and an amount thereof to be dissolved; (b) selecting a solvent based on the identified therapeutic agent; (c) dissolving the identified amount of the therapeutic agent in said solvent to form a first mixture; (d) determining a ratio of the vitamin E compound and the bio-absorbable carrier component; (e) mixing the vitamin E compound and the bio-absorbable carrier component to form a second mixture; (f) combining the first mixture with the second mixture to form a homogeneous solution; and (g) removing the solvent from the homogeneous solution such that the therapeutic agent remains dissolved in the bio-absorbable carrier component and the vitamin E.
  • a method for dissolving an amount of one or more therapeutic agents in a bio-absorbable carrier component and a vitamin E compound can include: (a) identifying said therapeutic agent and an amount thereof to be dissolved; (b) determining a ratio of the vitamin E compound and the bio-absorbable carrier component; and (c) dissolving the identified amount of the therapeutic agent in the vitamin E compound and the bio-absorbable carrier component to form a homogenous mixture.
  • a method for preparing a coating for a medical device can include an amount of one or more therapeutic agents dissolved in a bio-absorbable carrier component and a vitamin E compound.
  • the steps of the method for preparing a coating for a medical device can include: (a) identifying said therapeutic agent and an amount thereof to be dissolved; (b) selecting a solvent based on the identified therapeutic agent; (c) dissolving the identified amount of the therapeutic agent in said solvent to form a first mixture; (d) determining a ratio of the vitamin E compound and the bio-absorbable carrier component; (e) mixing the vitamin E compound and the bio-absorbable carrier component to form a second mixture; (f) combining the first mixture with the second mixture to form a homogeneous solution; and (g) removing the solvent from the homogeneous solution such that the therapeutic agent remains dissolved in the bio-absorbable carrier component and the vitamin E.
  • a method for preparing a coating for a medical device can include an amount of one or more therapeutic agents dissolved in a bio-absorbable carrier component and a vitamin E compound.
  • the steps of the method for preparing a coating for a medical device can include: (a) identifying said therapeutic agent and an amount thereof to be dissolved; (b) determining a ratio of the vitamin E compound and the bio-absorbable carrier component; and (c) dissolving the identified amount of the therapeutic agent in the vitamin E compound and the bio-absorbable carrier component to form a homogenous mixture.
  • a method of making a coated medical device includes providing the medical device and coating the medical device.
  • the coating includes an amount of one or more therapeutic agents dissolved in a solvent, a bio-absorbable carrier component and a vitamin E compound such that the coated medical device is implantable in a subject to effect delivery of the one or more therapeutic agents to a subject.
  • the solvent can be a solvent compatible with the coating, therapeutic agent, and intended use.
  • the solvent can be ethanol, N-methyl-pyrrolidone or a combination thereof.
  • the coating may further include a compatibilizer, a preservative or both.
  • the method of making a coated medical device can further involve preparing the coating prior to application to the medical device.
  • the steps of preparing the coating prior to the application to the medical device include: (a) identifying said therapeutic agent and an amount thereof to be dissolved; (b) selecting a solvent based on the identified therapeutic agent; (c) dissolving the identified amount of the therapeutic agent in said solvent to form a first mixture; (d) determining a ratio of the vitamin E compound and the bio-absorbable carrier component; (e) mixing the vitamin E compound and the bio-absorbable carrier component to form a second mixture; and (f) combining the first mixture with the second mixture to form a homogeneous solution.
  • the solvent can be a solvent compatible with the coating, therapeutic agent, and intended use.
  • the solvent can be ethanol, N-methylpyrrolidone or a combination thereof.
  • a further step includes removing the solvent after application of the coating to the medical device.
  • a method of making a coated medical device includes providing the medical device and coating the medical device.
  • the coating includes one or more therapeutic agents dissolved in a bio-absorbable carrier component and a vitamin E compound.
  • the method of making a coated medical device can further involve preparing the coating prior to application to the medical device.
  • the steps of preparing the coating prior to the application to the medical device include: (a) identifying said therapeutic agent and an amount thereof to be dissolved; (b) determining a ratio of the vitamin E compound and the bio-absorbable carrier component; and (c) dissolving the identified amount of the therapeutic agent in the vitamin E compound and the bio-absorbable carrier component to form a homogenous mixture.
  • the method of making a coated medical device further includes providing a pre-treatment between the medical device and the coating.
  • the pre-treatment can improve consistency and conformability and enhance the adhesion of the coating to the medical device.
  • the pre-treatment is bio-absorbable.
  • the pre-treatment can include at least one of a bio-absorbable carrier component, for example, fish oil.
  • the bio-absorbable carrier component may be modified from its naturally occurring state to one of increased viscosity in the form of a cross-linked gel.
  • a coated medical device in accordance with one embodiment of the present invention, includes a coating having an amount of one or more therapeutic agents, a bio-compatible carrier component and a vitamin E compound such that the medical device is implantable in a subject to effect delivery of the one or more therapeutic agents to said subject. Accordingly, the medical device is implantable in a subject to effect delivery of the one or more therapeutic agents to the subject.
  • the coated medical device may further include a compatabilizer, a preservative or a combination thereof.
  • the coated medical device further includes a solvent, wherein the solvent is selected based on the therapeutic agent.
  • the solvent can be a solvent compatible with the coating, therapeutic agent, and intended use. In one embodiment, the solvent can be ethanol, N-methyl-pyrrolidone or a combination thereof.
  • the coated medical device can include a pre-treatment provided on the medical device having a bio-absorbable carrier component and a coating disposed on top of the pre-treatment.
  • the pre-treatment can improve consistency and conformability and can enhance the adhesion of the coating.
  • the pre-treatment may comprise plasma, parylene, a hydrophobic polymer, or a hydrophilic polymer.
  • the coating disposed on top of the pre-treatment can further include a second bio-absorbable carrier component, a vitamin E compound and an amount of one or more therapeutic agents.
  • the bio-absorbable carrier component includes a naturally occurring oil, a fish oil fatty acid, a free fatty acid, a fatty acid ester, a mono-, a di- or a triglyceride, an oxidized triglyceride, a partially hydrolyzed triglyceride or a combination thereof.
  • the coated medical device is implantable in a subject to effect delivery of one or more therapeutic agents to the subject.
  • the coated medical device further includes a compatabilizer, a preservative or a combination thereof.
  • the coated medical device further includes a solvent.
  • the solvent is selected based on the therapeutic agent.
  • the solvent can be a solvent compatible with the coating, therapeutic agent, and intended use.
  • the solvent can be ethanol, N-methyl-pyrrolidone or a combination thereof.
  • the vitamin E compound can include one or more of alpha-tocopherol, beta-tocopherol, delta-tocopherol, gamma-tocopherol, alpha-tocotrienol, beta-tocotrienol, delta-tocotrienol, gamma-tocotrienol, alpha-tocopherol acetate, beta-tocopherol acetate, gamma-tocopherol acetate, delta-tocopherol acetate, alpha-tocotrienol acetate, beta-tocotrienol acetate, delta-tocotrienol acetate, gamma-tocotrienol acetate, alpha-tocopherol succinate, beta-tocopherol succinate, gamma-tocopherol succinate, delta-tocopherol succinate, alpha-tocotrienol succinate, beta-tocotrienol succinate, delta-tocopherol succinate, alpha-tocotrienol succinate, beta-to
  • the bio-absorbable carrier component contains lipids.
  • the bio-absorbable carrier component can be a naturally occurring oil, a fish oil fatty acid, a free fatty acid, a mono-, di- or triglyceride, a fatty acid ester, an oxidized triglyceride, a partially hydrolyzed triglyceride or a combination thereof.
  • the bio-absorbable carrier component can be fish oil.
  • the bio-absorbable carrier component can be modified from its naturally occurring state to a state of increased viscosity in the form of a cross-linked gel.
  • the bio-absorbable carrier component can contain omega-3 fatty acids.
  • the cross-linked gel is formed of an oil or oil composition that is at least partially cured.
  • the cross-linked gel can be a biological oil that is at least partially cured, including fish oil or other oils, including those oils containing lipids and/or omega-3 fatty acids.
  • cross-linked gel refers to a gel that is non-polymeric and is derived from an oil composition comprising molecules covalently cross-linked into a three-dimensional network by one or more of ester, ether, peroxide, and carbon-carbon bonds in a substantially random configuration.
  • the oil composition comprises a fatty acid molecule, a glyceride, and combinations thereof.
  • the fish oil fatty acids includes one or more of arachidic acid, gadoleic acid, arachidonic acid, eicosapentaenoic acid, docosahexaenoic acid or derivatives, analogs and pharmaceutically acceptable salts thereof.
  • the free fatty acids include one or more of butyric acid, caproic acid, caprylic acid, capric acid, lauric acid, myristic acid, palmitic acid, palmitoleic acid, stearic acid, oleic acid, vaccenic acid, linoleic acid, alpha-linolenic acid, gamma-linolenic acid, behenic acid, erucic acid, lignoceric acid, analogs and pharmaceutically acceptable salts thereof.
  • the therapeutic agent can include an antioxidant, an anti-inflammatory, an anti-coagulant, a drug to alter lipid metabolism, an anti-proliferative, an anti-neoplastic, an anti-fibrotic, an immunosuppressive, a tissue growth stimulant, a functional protein/factor delivery agent, an anti-infective agent, an imaging agent, an anesthetic, a chemotherapeutic agent, a tissue absorption enhancer, an anti-adhesion agent, a germicide, an antiseptic, a proteoglycan, a GAG, a gene or polynucleotide delivery agent, an analgesic, a polysaccharide (heparin), or a combination thereof.
  • an antioxidant an anti-inflammatory, an anti-coagulant, a drug to alter lipid metabolism, an anti-proliferative, an anti-neoplastic, an anti-fibrotic, an immunosuppressive, a tissue growth stimulant, a functional protein/factor delivery agent, an anti-infective agent, an
  • the therapeutic agent can include one or more of rapamycin, melatonin, paclitaxel, a protein kinase C inhibitor, cerivastatin, cilostazol, fluvastatin, lovastatin, pravastatin or derivatives, prodrugs, analogs and pharmaceutically acceptable salts thereof.
  • the coating can contain about 70% of a vitamin E compound and about 30% of a bio-absorbable carrier component, for example, fish oil.
  • bio-absorbable carrier component can be modified from its naturally occurring state to a state of increased viscosity in the form of a cross-linked gel.
  • the coating can contain about 50% of a vitamin E compound and about 50% of a bio-absorbable carrier component.
  • the bio-absorbable carrier component can comprise a free fatty acid, for example, oleic acid.
  • the coating is non-polymeric. In accordance with one aspect of the present invention the coating can inhibit restenosis and neointimal growth. In accordance with one aspect of the present invention, the coating can promote endothelialization. In accordance with one aspect of the present invention, the coating is bio-absorbable.
  • the medical device can be a stent.
  • the stent is formed of a substance selected from the group consisting of stainless steel, Nitinol alloy, nickel alloy, titanium alloy, cobalt-chromium alloy, tantalum, magnesium, ceramics, metals, plastics, and polymers.
  • applying the coating to the medical device can include at least one of dipping the medical device in the coating, spraying the coating on the medical device, painting the coating on the medical device, wiping the coating on the medical device, printing the coating on the device, applying the coating with an applicator and electrostatically applying the coating to the medical device.
  • the method of making a coated medical device further includes curing the coating on the medical device. Curing can involve applying at least one of heat, UV light, chemical cross-linker, or reactive gas to cure the coating. Curing with respect to the present invention generally refers to thickening, hardening, or drying of a material brought about by heat, UV, or chemical means.
  • the method of making a coated medical device further includes sterilizing the coating and the medical device.
  • Sterilization can involve use of at least one of ethylene oxide, gamma radiation, e-beam, steam, gas plasma, and vaporized hydrogen peroxide (VHP).
  • the coated medical device further comprises hardening the bio-absorbable carrier.
  • the further comprising hardening the bio-absorbable carrier by mixing the bio-absorbable carrier with reactive oils or oil compounds such as mono, di or triglycerides, esters of fatty acids, free fatty acids, partially oxidized or partially hydrolyzed triglycerides.
  • FIG. 1 is a flow chart illustrating a method of dissolving a therapeutic agent, in accordance with one embodiment of the present invention
  • FIG. 2 is a flow chart illustrating a method of making a coating for a medical device, in accordance with one embodiment of the present invention
  • FIG. 3 is a diagrammatic illustration of a medical device, according to one embodiment of the present invention.
  • FIG. 4 is a cross-sectional view of the medical device in accordance with one aspect of the present invention.
  • FIG. 5 is a cross-sectional view of the medical device in accordance with another aspect of the present invention.
  • FIG. 6 is a flow chart illustrating a method of making the coated medical device of the present invention, in accordance with one embodiment of the present invention.
  • FIG. 7 is a flow chart illustrating a variation of the method of FIG. 6 , in accordance with one embodiment of the present invention.
  • FIG. 8 is a flow chart illustrating a variation of the method of FIG. 6 , in accordance with one embodiment of the present invention.
  • FIG. 9 is a diagrammatic illustration of a coated medical device in accordance with one embodiment of the present invention.
  • FIGS. 1 through 9 illustrate examples of embodiments of solubilizing a therapeutic agent and of embodiments of a coated medical device according to the present invention.
  • FIGS. 1 through 9 illustrate examples of embodiments of solubilizing a therapeutic agent and of embodiments of a coated medical device according to the present invention.
  • FIG. 1 is a flowchart illustrating a method of the present invention, in the form of dissolving a therapeutic agent in a solvent, a vitamin E compound and a bio-absorbable carrier component, in accordance with one embodiment of the present invention.
  • bio-absorbable as used herein generally refers to having the property or characteristic of being able to penetrate the tissue of a subject's body.
  • the bio-absorbable substance is soluble in the phospholipid bi-layer of cells of body tissue, and therefore impacts how the bio-absorbable substance penetrates into the cells.
  • the bio-absorbable carrier can be bio-compatible.
  • bio-compatible refers to materials that do not elicit a toxic or severe immunological response.
  • Biodegradable is generally defined as capable of being decomposed by biological agents, or capable of being broken down by microorganisms or biological processes. Biodegradation thus relates to the breaking down and distributing of a substance through the subject's body, verses incorporation into and/or utilization by the cells of the subject's body tissue. Biodegradable substances can cause inflammatory response due to either the parent substance or those formed during breakdown, and they may or may not be absorbed by tissues.
  • bio-absorbable generally refers to having the property or characteristic of being able to penetrate the tissues of a patient's body.
  • the bio-absorbable coating contains lipids, many of which originate as triglycerides. It has previously been demonstrated that triglyceride products such as partially hydrolyzed triglycerides and fatty acid molecules can integrate into cellular membranes and enhance the solubility of drugs into the cell. Whole triglycerides are known not to enhance cellular uptake as well as partially hydrolyzed triglycerides, because it is difficult for whole triglycerides to cross cell membranes due to their relatively large molecule size. Alpha-tocopherol can also integrate into cellular membranes resulting in decreased membrane fluidity and cellular uptake.
  • a coating containing an antioxidant such as alpha-tocopherol may aid in preventing further damage by this mechanism.
  • a method of dissolving a therapeutic agent in a solvent, a vitamin E compound and a bio-absorbable carrier component involves determining the therapeutic agent to be dissolved (step 100 ).
  • the therapeutic agents suitable for use in the invention are not particularly limited.
  • the therapeutic agents can be hydrophilic, lipophilic, amphiphilic or hydrophobic, and can be dissolved in the bio-absorbable carrier, the solvent or the bio-absorbable carrier and the solvent.
  • the therapeutic agent can be any agent having therapeutic value when administered to a subject, for example, a mammal.
  • the therapeutic agent component can take a number of different forms including but not limited to anti-oxidants, anti-inflammatory agents, anti-coagulant agents, drugs to alter lipid metabolism, anti-proliferatives, anti-neoplastics, tissue growth stimulants, analgesics, functional protein/factor delivery agents, anti-infective agents, anti-imaging agents, anesthetic agents, therapeutic agents, tissue absorption enhancers, anti-adhesion agents, anti-migratory agents, pro-healing agents, ECM/Protein production inhibitors, germicides, antiseptics, proteoglycans, GAG's, gene delivery (polynucleotides), polysaccharides (heparin), rapamycin, melatonin, paclitaxel, a protein kinase C inhibitor, cerivastatin, cilostazol, fluvastatin, lovastatin, pravastatin or derivatives, analogs, prodrugs and pharmaceutically acceptable salts thereof, and
  • NSAIDS dexamethazone, methylprednisolone
  • leflunomide NSAIDS, ibuprofen, acetaminophen, hydrocortizone acetate, hydrocortizone sodium phosphate, macrophage-targeted bisphosphonates Growth Factor Angiopeptin, trapidil, suramin Antagonists Antiplatelet Agents Aspirin, dipyridamole, ticlopidine, clopidogrel, GP IIb/IIIa inhibitors, abcximab Anticoagulant Agents Bivalirudin, heparin (low molecular weight and unfractionated), wafarin, hirudin, enoxaparin, citrate Thrombolytic Agents Alteplase, reteplase, streptase, urokinase, TPA, citrate Drugs to Alter Lipid Fluvastatin, colestipol, lovastatin, atorvastatin, amlopidine Metabolism (e
  • ACE Inhibitors Elanapril, fosinopril, cilazapril Antihypertensive Agents Prazosin, doxazosin Antiproliferatives and Cyclosporine, cochicine, mitomycin C, sirolimus Antineoplastics micophenonolic acid, rapamycin, everolimus, tacrolimus, paclitaxel, QP-2, actinomycin, estradiols, dexamethasone, methatrexate, cilostazol, prednisone, cyclosporine, doxorubicin, ranpirnas, troglitzon, valsart, pemirolast, C- MYC antisense, angiopeptin, vincristine, PCNA ribozyme, 2-chloro-deoxyadenosine Tissue growth stimulants Bone morphogeneic protein, fibroblast growth factor Promotion of hollow Alcohol, surgical sealant polymers, polyvinyl particles, polyvin
  • Some specific examples of therapeutic agents useful in the anti-restenosis realm include cerivastatin, cilostazol, fluvastatin, lovastatin, paclitaxel, pravastatin, rapamycin, a rapamycin carbohydrate derivative (for example as described in US Patent Application Publication 2004/0235762), a rapamycin derivative (for example as described in U.S. Pat. No. 6,200,985), everolimus, seco-rapamycin, seco-everolimus, and simvastatin.
  • the amount of the therapeutic agent is then identified (step 105 ).
  • the amount of the therapeutic agent in the present invention in one embodiment, can be an effective amount.
  • the term “effective amount” as used herein, refers to that amount of a compound sufficient to result in amelioration of symptoms, e.g., treatment, healing, prevention or amelioration of the relevant medical condition, or an increase in rate of treatment, healing, prevention or amelioration of such conditions.
  • an effective amount refers to that ingredient alone.
  • an effective amount can refer to combined amounts of the active ingredients that result in the therapeutic effect, whether administered in combination, serially or simultaneously.
  • formulations comprise two or more therapeutic agents
  • such formulations can be described as an effective amount of compound A for indication A and an effective amount of compound B for indication B
  • such descriptions refer to amounts of A that have a therapeutic effect for indication A, but not necessarily indication B, and amounts of B that have a therapeutic effect for indication B, but not necessarily indication A.
  • one of the therapeutic agents may have a synergistic effect on another therapeutic agent in a combination of therapeutic agents.
  • each therapeutic agent may have a synergistic effect on any other therapeutic agent provided in the invention.
  • “synergy” or “synergistic effect” refers to an enhancement of the therapeutic properties of one or more therapeutic agents of the invention.
  • compound A can have an enhancement effect on compound B and compound B can have an enhancement effect on compound A.
  • a and B may have no effect upon each other.
  • Actual dosage levels of the active ingredients in a therapeutic formulation of the present invention may be varied so as to obtain an amount of the active ingredients which is effective to achieve the desired therapeutic response without being unacceptably toxic.
  • the selected dosage level will depend upon a variety of pharmacokinetic factors including the activity of the particular therapeutic formulations of the present invention employed, or the ester, salt or amide thereof, the route of administration, the time of administration, the duration of administration, the rate of excretion of the particular compounds being employed, the duration of the treatment, other drugs, compounds and/or materials used in combination with the particular compounds employed, and like factors well known in the medical arts.
  • the present invention relates to coating for a medical device in which the coating is formed of three primary components, the bio-absorbable carrier component, the vitamin E compound and a therapeutic agent component.
  • the therapeutic agent component has some form of a therapeutic or biological effect.
  • the bio-absorbable carrier component can also have a therapeutic or biological effect. It should again be noted that the bio-absorbable carrier component is different from the conventional bio-degradable substances utilized for similar purposes.
  • the bio-absorbable characteristic of the carrier component enables the cells of the body tissue of a patient to absorb the bio-absorbable carrier component itself, rather than breaking down the carrier component into inflammatory by-products and disbursing said by-products of the component for ultimate elimination by the patient's body. Accordingly, anti-inflammatory drug dosages to the patient do not need to be increased to additionally compensate for inflammation caused by the carrier component, as is otherwise required when using polymer-based carriers that themselves cause inflammation
  • a solvent based on the therapeutic agent can be selected (step 110 ).
  • the solvent can be chosen based on the physical properties of the therapeutic agent.
  • One skilled in the art will be able to determine the appropriate solvent to use.
  • the solvent can be a solvent or mixture of solvents and include solvents that are generally acceptable for pharmaceutical use.
  • Suitable solvents include, for example: alcohols and polyols, such as C 2 -C 6 alkanols, 2-ethoxyethanol, ethanol, isopropanol, butanol, benzyl alcohol, ethylene glycol, propylene glycol, butanediols and isomers thereof, glycerol, pentaerythritol, sorbitol, mannitol, transcutol, dimethyl isosorbide, polyethylene glycol, and polypropylene glycol; amides, such as 2-pyrrolidone, 2-piperidone, 2-caprolactam, N-alkylpyrrolidone, N-methyl-2-pyrrolidone, N-hydroxyalkylpyrrolidone, N-alkylpiperidone, N-alkylcaprolactam, dimethylacetamide; esters, such as ethyl acetate, methyl acetate, butyl acetate, ethylene glycol diethyl
  • the amount of solvent that can be included in compositions of the present invention is not particularly limited.
  • the amount of the therapeutic agent to be dissolved can be an amount up to the maximum amount that can be dissolved in the solvent, vitamin E compound and the bio-absorbable carrier component.
  • the maximum amount of the therapeutic agent that can be dissolved is readily determined by simple mixing, as the presence of any non-dissolved therapeutic agent is apparent after solvent removal on visual inspection.
  • the amount of the therapeutic agent will be less than the maximum that can be dissolved.
  • the amount of the given solvent can be limited to a pharmaceutically acceptable amount, which can be readily determined by one of skill in the art.
  • the therapeutic agent and a solvent can be mixed together, for example, by vortexing, sonicating, stirring, rolling, or shaking, to form a first mixture (step 120 ).
  • the ratio of a vitamin E compound and the bio-absorbable carrier component is then determined (step 130 ).
  • One skilled in the art would be able to readily determine the ratio by, for example, combining the therapeutic that is dissolved in a solvent with various combinations of vitamin E and bio-absorbable carrier components.
  • the bio-absorbable carrier component can include fish oil, fish oil mono, di and triglycerides, free fatty acids, fatty acid esters, partially oxidized oil, or hydrolyzed oil and any derivatives.
  • the level of soluble drug can be influenced by such factors as vitamin E level, fish oil level, fatty acid ester content, free fatty acid content, mono, di or triglyceride content, presence of oxidation, or by hydrolysis byproducts of the oil.
  • the amount of soluble drug can also be effected by the solvent and/or solvent loading that is used to load the drug into the formulation.
  • vitamin E compound generally refers to any compound of the vitamin E family, including derivatives, analogs, and pharmaceutically acceptable salts thereof.
  • the vitamin E compound and include, for example, alpha-tocopherol, beta-tocopherol, delta-tocopherol, gamma-tocopherol, alpha-tocotrienol, beta-tocotrienol, delta-tocotrienol, gamma-tocotrienol, alpha-tocopherol acetate, beta-tocopherol acetate, gamma-tocopherol acetate, delta-tocopherol acetate, alpha-tocotrienol acetate, beta-tocotrienol acetate, delta-tocotrienol acetate, gamma-tocotrienol acetate, alpha-tocopherol succinate, beta-tocopherol succinate, gamma-tocopherol succinate, delta-tocopherol succinate, alpha-tocopherol succinate, beta-
  • Suitable vitamin E compound analogs can be, for example, desmethyl-tocotrienol, didesmethyl-tocotrienol, P 18 tocotrienolTM, P 25 tocotrienol, alpha-tocomonoenol.
  • the vitamin E compounds can be conveniently isolated from biological materials or synthesized from commercially available starting materials by techniques known to those skilled in the art.
  • the vitamin E compounds can be in their isomerically pure form or be present as mixtures of isomers.
  • the vitamin E compounds can exist as the D-isomer, the L-isomer, or the D,L-racemic mixture.
  • fat soluble vitamins include, for example, vitamin A, vitamin D, vitamin K, and derivatives, pharmaceutically acceptable salts, esters and amides thereof.
  • bio-absorbable carrier component refers to a composition comprising a naturally occurring oil, fish oil fatty acids, free fatty acids, fatty acid esters, triglycerides, diglycerides, monoglycerides, partially hydrolyzed oil, oxidized oil or a combination thereof.
  • the naturally occurring oil is fish oil.
  • Suitable fish oils can be obtained, for example from a variety of fish and can include cod liver oil, shark liver oil and fish body oils.
  • the components of fish oil include triacylglycerol, diacylglycerol, monoacylglycerol, phospholipids, sterylesters, sterols, mixed tocopherols and free fatty acids.
  • the quantities of total lipids may vary between different fish oils.
  • the fish oil is modified to a state of increased viscosity. The modification of the fish oil and be accomplished by techniques known to those skilled in the art.
  • fatty acid refers to compounds comprising carbon, hydrogen and oxygen arranged as a carbon skeleton with a carboxyl group at one end. Saturated fatty acids have all hydrogens, thus have no double bonds. Monounsaturated fatty acids have one double bond and polyunsaturated fatty acids have more than one double bond. Examples of common fatty acids are seen in Table 2.
  • Omega-3 and omega-6 fatty acids are also known as essential fatty acids because they are important for maintaining good health, despite the fact that the human body cannot make them on its own. As such, omega-3 and omega-6 fatty acids must be obtained from external sources, such as food. Omega-6 fatty acids can be characterized as linoleic acids, gamma-linoleic acids and arachidonic acid. Omega-3 fatty acids can be further characterized as eicosapentaenoic acid (EPA), docosahexanoic acid (DHA), and alpha-linolenic acid (ALA). Both EPA and DHA are known to have anti-inflammatory effects and wound healing effects within the human body.
  • EPA eicosapentaenoic acid
  • DHA docosahexanoic acid
  • ALA alpha-linolenic acid
  • fish oil fatty acids refers to those fatty acids which can be obtained from fish oil.
  • Fish oil fatty acids can include, but are not limited to, arachidic acid, gadoleic acid, arachidonic acid, eicosapentaenoic acid, docosahexaenoic acid, derivatives, analogs, pharmaceutically acceptable salts, and combinations thereof.
  • free fatty acids refers to those fatty acids which are not bound to other molecules. Bound fatty acids can be bound to compounds including, but not limited to, glycerides, glycerophospatides, glycosyldiglycerides, sterol esters, waxes, acylglycerols, cholesterol esters and glycospingolipids. Free fatty acids can be derived from their bound form by techniques well known in the art, such as saponification.
  • Suitable free fatty acids can include butyric acid, caproic acid, caprylic acid, capric acid, lauric acid, myristic acid, palmitic acid, palmitoleic acid, stearic acid, oleic acid, vaccenic acid, linoleic acid, alpha-linolenic acid, gamma-linolenic acid, behenic acid, erucic acid, lignoceric acid, and derivatives, analogs and pharmaceutically acceptable salts thereof.
  • free fatty acids can also comprise fish oil fatty acids.
  • the ratio of the vitamin E compound to the bio-absorbable carrier component can be determined by techniques known to those skilled in the art. Accordingly, the bio-absorbable carrier can be about 70% of a bio-absorbable carrier component and about 30% of a vitamin E compound; about 70% of a vitamin E compound and about 30% of a bio-absorbable carrier component; or about 50% of a vitamin E compound and about 50% of a bio-absorbable carrier component.
  • the bio-absorbable carrier component and the vitamin E compound or a combination thereof are provided (step 130 ).
  • the bio-absorbable carrier component and the vitamin E compound can be mixed together, for example, by vortexing, sonicating, stirring, rolling, or shaking, to form a second mixture (step 140 ).
  • the second mixture can be mixed first, the first mixture can be mixed first, or the first mixture and the second mixture can be mixed substantially simultaneously.
  • the first mixture and the second mixture can then be mixed (step 150 ) such that the therapeutic agent is dissolved, or, if the therapeutic agent was previously dissolved in the solvent, the therapeutic agent remains dissolved.
  • the solvent is removed by techniques well known in the art, for example, by vacuum, washing, heating, evaporation and the like (step 160 ).
  • the resulting solution can be inspected for presence of crystal formation by techniques well known in the art (step 170 ).
  • Suitable techniques for inspection for the presense of crystal formation include, for example, visual inspection, microscopic inspections, as well as chemical analysis techniques such as scanning electron microscopy (SEM), environmental scanning electron microscopy (ESEM), differential scanning calorimetry (DSC) and atomic force microscopy (AFM).
  • FIG. 2 is a flowchart illustrating a method of the present invention, in the form preparing a coating for medical devices, in accordance with one embodiment of the present invention.
  • a combination of the first mixture and the second mixture is provided (step 200 ) and the solvent is removed (step 205 ), which forms the coating for a medical device (step 210 ).
  • a coated medical device is provided.
  • the medical devices of the invention can be, for example, a catheter, a guidewire, a cannula, a stent, a vascular or other graft, a cardiac pacemaker lead or lead tip, a cardiac defibrillator lead or lead tip, a heart valve, or an orthopedic device, appliance, implant, or replacement.
  • the medical device is a stent.
  • the term “stent” refers to what is known in the art as a metallic or polymeric cage-like device that is used to hold bodily vessels, such as blood vessels, open.
  • the device and methods of the present invention can be useful in a wide variety of locations within a human or veterinary patient, such as in the esophagus, trachea, colon, biliary tract, urinary tract and vascular systems, including coronary vessels, as well as for subdural and orthopedic devices, implants or replacements. They can be advantageous for reliably delivering suitable bioactive materials during or following an intravascular procedure, and find particular use in preventing abrupt closure and/or restenosis of a blood vessel. More particularly, they permit, for example, the delivery of an effective amount of one or more therapeutic agents to the region of a blood vessel which has been opened by PTA.
  • the coated medical devices of the invention can be implantable in a subject.
  • subject includes animals (e.g., vertebrates, amphibians, fish), mammals (e.g., cats, dogs, horses, pigs, cows, sheep, rodents, rabbits, squirrels, bears), and primates (e.g., chimpanzees, gorillas, and humans).
  • animals e.g., vertebrates, amphibians, fish
  • mammals e.g., cats, dogs, horses, pigs, cows, sheep, rodents, rabbits, squirrels, bears
  • primates e.g., chimpanzees, gorillas, and humans.
  • the device of the present invention can be formed of a substance selected from the group consisting of stainless steel, nickel, silver, platinum, gold, titanium, tantalum, iridium, tungsten, Nitinol, inconel, Nitinol alloy, nickel alloy, titanium alloy, cobalt-chromium alloy, magnesium, tantalum, ceramics, metals, plastics, and polymers or the like.
  • FIG. 3 illustrates a stent 10 in accordance with one embodiment of the present invention.
  • the stent 10 is representative of a medical device that is suitable for having a coating applied thereon to effect a therapeutic result.
  • the stent 10 is formed of a series of interconnected struts 12 having gaps 14 formed therebetween.
  • the stent 10 is generally cylindrically shaped. Accordingly, the stent 10 maintains an interior surface 16 and an exterior surface 18 .
  • the illustrative stent 10 is merely exemplary of a number of different types of stents available in the industry.
  • the strut 12 structure can vary substantially.
  • the material of the stent can also vary from a metal, such as stainless steel, Nitinol, nickel, and titanium alloys, to cobalt chromium alloy, ceramic, plastic, and polymer type materials.
  • the present invention is not limited to use on stents. Instead, the present invention has application on a wide variety of medical devices. For purposes of clarity, the following description will refer to a stent as the exemplar medical device.
  • the terms medical device and stent are interchangeable with regard to the applicability of the present invention. Accordingly, reference to one or another of the stent, or the medical device, is not intended to unduly limit the invention to the specific embodiment described.
  • FIG. 4 illustrates one example embodiment of the stent 10 having a coating 20 applied thereon in accordance with the present invention.
  • FIG. 5 is likewise an alternative embodiment of the stent 10 having the coating 20 also applied thereon.
  • the coating 20 is applied to the medical device, such as the stent 10 , to provide the stent 10 with different surface properties, and also to provide a vehicle for therapeutic applications.
  • the coating 20 is applied on both the interior surface 16 and the exterior surface 18 of the strut 12 forming the stent 10 .
  • the coating 20 in FIG. 4 substantially encapsulates the struts 12 of the stent 10 .
  • the coating 20 in FIG. 5 the coating 20 is applied only on the exterior surface 18 of the stent 10 , and not on the interior surface 16 of the stent 10 .
  • the coating 20 in both configurations is the same coating; the difference is merely the portion of the stent 10 that is covered by the coating 20 .
  • the coating 20 as described throughout the description can be applied in both manners shown in FIG. 4 and FIG. 5 , in addition to other configurations such as, partially covering select portions of the stent 10 structure. All such configurations are described by the coating 20 reference.
  • the bio-absorbable nature of the coating results in the coating 20 being absorbed over time by the cells of the body tissue.
  • the coating, or break down products of the coating, will not induce an inflammatory response.
  • the coating 20 is generally composed of fatty acids, including in some instances omega-3 fatty acids bound to trigycerides, and potentially also including a mixture of free fatty acids and vitamin E.
  • the triglycerides are broken down by lipases (enzymes) which result in free fatty acids that can be transported across cell membranes. Subsequently, fatty acid metabolism by the cell occurs to metabolize any substances originating with the coating.
  • the bio-absorbable nature of the coating of the present invention thus results in the coating being absorbed, leaving only an underlying delivery or other medical device structure.
  • the bio-absorbable carrier component does not induce a foreign body response.
  • the modification of the oils from a more liquid state to a more solid, but still flexible, physical state is implemented through a curing process.
  • Curing with respect to the present invention generally refers to thickening, hardening, or drying of a material brought about by heat, UV, or chemical means.
  • the oils are cured, especially in the case of fatty acid-based oils such as fish oil, cross-links form creating a gel.
  • As the curing process is performed over increasing time durations and/or increasing temperature conditions and/or increasing UV output, more cross-links form transitioning the gel from a relatively liquid gel to a relatively solid-like, but still flexible, gel structure.
  • the coatings for the medical device of the present invention can include an amount of one or more therapeutic agents dissolved in a bio-absorbable carrier component and a vitamin E compound.
  • the coating for the medical device can additionally include an amount of one or more therapeutic agents dissolved in a bio-absorbable carrier component, a vitamin E compound and a solvent.
  • the coatings of the invention can further contain a compatibilizer, a preservative or both.
  • compatibilizer refers to an added component of the coating that may prevent crystal formation after the removal of solvent.
  • Suitable compatibilizers include, for example Vitamin E or its derivatives, free fatty acids, fatty acid esters, partially oxidized triglycerides, hydrolyzed triglycerides, therapeutic agents, antioxidants, surfactants and any amphiphilic materials.
  • the term “preservative”, as used herein, refers to an added component of the coating that can prevent the deterioration of the therapeutic agent, the coating or both. Suitable preservatives include, for example, vitamin E or its derivatives, as well as antioxidant materials.
  • the coatings of the invention are non-polymeric.
  • polymer is a generic term that is normally used by one of ordinary skill in the art to describe a substantially long molecule formed by the chemical union of five or more identical combining units called monomers. In most cases, the number of monomers is quite large (3500 for pure cellulose). See Hawley's Condensed Chemical Dictionary , page 900.
  • Prior attempts to create drug delivery platforms such as coatings on stents primarily make use of polymer based coatings containing one or more therapeutic agents. Regardless of how much of the therapeutic agent would be most beneficial to the damaged tissue, the polymer releases the therapeutic agent based on the properties of the polymer coating.
  • the effect of the coating is substantially local at the surface of the tissue making contact with the coating and the stent.
  • the effect of the coating is further localized to the specific locations of stent struts pressed against the tissue location being treated.
  • the uptake of the therapeutic agent is facilitated by the delivery of the therapeutic agent to the cell membrane by the bio-absorbable carrier component. Further, the therapeutic agent is not freely released into the body fluids, but rather, is delivered directly to the cells and tissue. In prior configurations using polymer based coatings, the drugs were released at a rate regardless of the reaction or need for the drug on the part of the cells receiving the drug.
  • the bio-absorbable nature of the carrier component and the resulting coating results in the coating 20 being completely absorbed over time by the cells of the body tissue and body fluids.
  • the coating breaks down into sub-parts and substances which do not induce an inflammatory response and are eventually distributed through the body and, in some instances, disposed of by the body, as is the case with biodegradable coatings.
  • the bio-absorbable nature of coating 20 of the present invention results in the coating being absorbed, leaving only the stent structure, or other medical device structure. There is no foreign body response to the bio-absorbable carrier component.
  • the coating 20 of the present invention can be further configured to release the therapeutic agent component at a rate no faster than a selected controlled release rate over a period of weeks to months.
  • the controlled release rate action is achieved by providing an increased level of vitamin E in the mixture with the fish oil, to create a more viscous, sticky coating substance that better adheres and lasts for a longer duration on the implanted medical device.
  • the controlled release rate can include an initial burst of release, followed by the sustained multi-week to multi-month period of release.
  • the controlled release rate can be increased.
  • the fatty acids can be found in the oil, and/or fatty acids such as myristic acid or oleic acid can be added to the oil.
  • the ratio of fatty acids to alpha-tocopherol can be varied in the preparation of the coating 20 to vary the subsequent release rate of the therapeutic agent in a controlled and predictable manner.
  • the oil provides a lubricious surface against the vessel walls.
  • the stent 10 having the coating 20 applied thereon is implanted within a blood vessel, for example, there can be some friction between the stent walls and the vessel walls. This can be injurious to the vessel walls, and increase injury at the diseased vessel location.
  • the use of the naturally occurring oil, such as fish oil provides extra lubrication to the surface of the stent 10 , which reduces the initial injury. With less injury caused by the stent, there is less of an inflammatory response and less healing is required.
  • the coatings of the invention can inhibit restenosis, induced either biologically or mechanically.
  • Biologically induced restenosis includes, but is not limited to injury attributed to infectious disorders including endotoxins and herpes viruses such as cytomegalovirus; metabolic disorders such as atherosclerosis; and vascular injury resulting from hypothermia, and irradiation.
  • Mechanically induced restenosis includes, but is not limited to, vascular injury caused by catheterization procedures or vascular scraping procedures such as percutaneous transluminal coronary angioplasty; vascular surgery; transplantation surgery; laser treatment; and other invasive procedures which disrupt the integrity of the vessel.
  • Neointimal growth refers to the migration and proliferation of vascular smooth muscle (VSM) cells with subsequent deposition of extracellular matrix components at the site of injury.
  • VSM vascular smooth muscle
  • Neointimal growth can occur as the result of arterial tissue injury caused by biological or mechanical origins. Injury can cause an exaggerated or excessive healing response characterized by excessive proliferation of the vascular smooth muscle cells in the neointima and subsequent secretion of extracellular matrix causing intimal hyperplasia that can often result in stenosis of the artery. While the mechanism is complex, the hyperplasia appears to result at least partly from transformation of the smooth muscle cells from a quiescent, contractile phenotype to a proliferative phenotype. If untreated the proliferation of cells and secretion of extracellular matrix can obstruct the vessel lumen.
  • VSM vascular smooth muscle
  • the coatings of the invention can further promote endothelialization.
  • Endothelialization refers to both any process of replacing the endothelium stripped by any biological or mechanical process and any process of growing new endothelial cells to cover an implanted medical device.
  • the endothelialization can involve ingrowth of the proximal or distal endothelium longitudinally over the stent, from the lumen of the blood vessel into which the stent is inserted. Endothelialization via this method can result in endothelial cells lining the lumen of the stented vessel.
  • Stents can be treated or coated with drugs or other substances which encourage endothelial growth and/or recruitment of endothelial progenitor cells for example from the blood circulation.
  • the endothelialization can involve promoting pannus ingrowth longitudinally into the device from the lumen of the blood vessel into which the stent is inserted. Endothelialization via this method can result in endothelial cells lining the lumen of the device with few if any endothelial cells in the porosity of the device. Endothelialization can also refer to “transmural” or “transinterstitial” endothelialization, which can involve promoting the ingrowth of capillaries and/or capillary endothelial cells through the device wall and into the porosity.
  • endothelial cells originate in the microvasculature of adjacent tissue external to the device, and grow through the device wall, in part by virtue of its porosity. Under appropriate conditions, the endothelial cells are able to grow through the stent wall and colonize the stent lumen. Endothelialization can further refer to “capillary endothelialization”.
  • the process of capillary endothelialization can be distinguished by its sequential cellular steps, including the initial attachment of endothelial cells to the stent material, followed by their spreading, inward migration, and optionally, proliferation. Accordingly, endothelialization can additionally refer to all of these processes.
  • endothelial cells can refer to both mature endothelial cells and endothelial progenitor cells.
  • the coatings can effect controlled delivery of the one or more therapeutic agents.
  • controlled release and “delivery of the therapeutic agent is controlled” generally refers to the release of a biologically active agent in a predictable manner over the time period of several days, several weeks, or several months as desired and predetermined upon formation of the biologically active agent on the medical device from which it is being released. Controlled release includes the provision of an initial burst of release upon implantation, followed by the predictable release over the aforementioned time period.
  • the step of applying a coating substance to form a coating on the medical device such as the stent 10 can include a number of different application methods.
  • the stent 10 can be dipped into a liquid solution of the coating substance.
  • the coating substance can be sprayed onto the stent 10 , which results in application of the coating substance on the exterior surface 18 of the stent 10 as shown in FIG. 5 .
  • Another alternative application method is painting, using an applicator or wiping the coating substance on to the stent 10 , which also results in the coating substance forming the coating 20 on the exterior surface 18 as shown in FIG. 5 .
  • the present invention is not limited to the specific embodiment described herein, but is intended to apply generally to the application of the coating substance to the medical device, taking whatever precautions are necessary to make the resulting coating maintain desired characteristics.
  • FIG. 6 illustrates one method of making the present invention, in the form of the coated stent 10 , in accordance with one embodiment of the present invention.
  • the process involves providing a medical device, such as the stent 10 (step 600 ).
  • a coating, such as coating 20 is then applied to the medical device (step 610 ).
  • this basic method of application of a coating to a medical device such as the stent 10 can have a number of different variations falling within the process described.
  • the stent 10 with the coating 20 applied thereon can be implanted after the coating 20 is applied, or additional steps such as curing and sterilization can be applied to further prepare the stent 10 and coating 20 .
  • the coating 20 includes a therapeutic agent that requires some form of activation (such as UV light), such actions can be implemented accordingly.
  • FIG. 7 is a flowchart illustrating one example implementation of the method of FIG. 6 .
  • the therapeutic agent desired for delivery is identified (step 700 ) and the amount of said therapeutic agent is identified (step 705 ).
  • a solvent based on the properties of the therapeutic agent is selected (step 710 ) and the solvent and the therapeutic agent are mixed to provide a first mixture (step 715 ).
  • the ratio of the vitamin E compound and the bio-absorbable carrier component is determined (step 720 ), and are subsequently mixed to form a second mixture (step 725 ).
  • the first mixture and the second mixture are then combined to form a coating for a medical device (step 730 ).
  • the coating for the medical device is applied to the medical device (step 735 ) and the solvent is removed (step 740 ), or, alternatively, the solvent is removed (step 745 ) and the coating is applied to the medical device (step 750 ).
  • the coating for a medical device can be applied to the medical device (step 735 and step 750 ) and can take place in a manufacturing-type facility and subsequently shipped and/or stored for later use.
  • the coating 20 can be applied to the stent 10 just prior to implantation in the patient.
  • the process utilized to prepare the stent 10 will vary according to the particular embodiment desired.
  • the stent 10 is provided with the coating 20 and subsequently sterilized in accordance with any of the methods provided herein, and/or any equivalents.
  • the stent 10 is then packaged in a sterile environment and shipped or stored for later use. When use of the stent 10 is desired, the stent is removed from the packaging and implanted in accordance with its specific design.
  • the stent can be prepared in advance.
  • the stent 10 for example, can be sterilized and packaged in a sterile environment for later use.
  • the stent 10 is removed from the packaging, and the coating substance is applied to result in the coating 20 resident on the stent 10 .
  • the coating 20 can result from application of the coating substance by, for example, the dipping, spraying, brushing, swabbing, wiping, printing, using an applicator or painting methods.
  • the coated medical device is then sterilized using any number of different sterilization processes (step 755 ).
  • Sterilization can involve the use of at least one of ethylene oxide, gamma radiation, e-beam, steam, gas plasma, and vaporized hydrogen peroxide (VHP).
  • sterilization processes can also be applied, and that those listed herein are merely examples of sterilization processes that result in a sterilization of the coated stent, preferably without having a detrimental effect on the coating 20 .
  • a surface preparation or pre-treatment 22 is provided on a stent 10 . More specifically and in reference to the flowchart of FIG. 8 , a pre-treatment substance is first provided (step 800 ). The pre-treatment substance is applied to a medical device, such as the stent 10 , to prepare the medical device surface for application of the coating (step 810 ). Suitable pre-treatments include partially cured fish oil, plasma, parylene, and hydrophobic or hydrophilic polymers. If desired, the pre-treatment 22 is cured (step 820 ). Curing methods can include processes such as application of UV light or application of heat or curing by chemical means. A coating substance is then applied on top of the pre-treatment 22 (step 830 ). The coated medical device is then sterilized using any number of sterilization processes as previously mentioned (step 840 ).
  • FIG. 9 illustrates the stent 10 having two coatings, specifically, the pre-treatment 22 and the coating 20 .
  • the pre-treatment 22 serves as a base or primer for the coating 20 .
  • the coating 20 conforms and adheres better to the pre-treatment 22 verses directly to the stent 10 , especially if the coating 20 is not heat or UV cured.
  • the pre-treatment can be formed of a number of different materials or substances.
  • the pre-treatment is formed of a bio-absorbable substance, such as a naturally occurring oil (e.g., fish oil).
  • the bio-absorbable nature of the pre-treatment 22 results in the pre-treatment 22 ultimately being absorbed by the cells of the body tissue after the coating 20 has been absorbed.
  • the pre-treatment 22 can be cured to better adhere the pre-treatment 22 to the stent 10 , without losing the therapeutic benefits resident in the subsequently applied coating 20 . Furthermore, the cured pre-treatment 22 provides better adhesion for the coating 20 relative to when the coating 20 is applied directly to the stent 10 surface. In addition, the pre-treatment 22 , despite being cured, remains bio-absorbable, like the coating 20 .
  • methods can be used to enhance the curing process. These methods include, for example, the addition of other reactive oils, such as linseed oil, and the application of reactive gasses, such as oxygen, fluorine, methane or propylene, plasma treatment, and pressure in the presence of reactive gasses and the like.
  • the pre-treatment 22 can be applied to both the interior surface 16 and the exterior surface 18 of the stent 10 , if desired, or to one or the other of the interior surface 16 and the exterior surface 18 . Furthermore, the pre-treatment 22 can be applied to only portions of the surfaces 16 and 18 , or to the entire surface, if desired. In one embodiment, the pre-treatment can include a therapeutic agent.
  • a bio-absorbable carrier component in combination with a vitamin E compound was made by mixing 1.5 grams of vitamin E and 3.5 grams of fish oil to form a base coating (30% vitamin E).
  • a sample was then prepared by first dissolving 28 mg of rapamycin in 529 mg of NMP (N-methyl-2-pyrrolidone). After the drug was fully dissolved in the solvent, 502 mg of the 30% vitamin E/70% fish oil base coat was added and the solution was vortexed until thoroughly mixed. A drop of the coating was then placed on a microscope slide and the sample was dried over night under vacuum in a bell jar. This was the maximum level of drug loading (5.3%) attainable with this formulation before crystals began to form after drying.
  • a bio-absorbable carrier component in combination with a vitamin E compound was then made by mixing 3.5 grams of vitamin E and 1.5 grams of fish oil to form a base coating (70% vitamin E).
  • a sample was then prepared by first dissolving 110 mg of rapamycin in 244 mg of NMP (n-Methyl-2-Pyrrolidone). After the drug was fully dissolved in the solvent, 118 mg of the 70% vitamin E/30% fish oil base coat was added and the solution was vortexed until thoroughly mixed. A drop of the coating was then placed on a microscope slide and the sample was dried over night under vacuum in a bell jar. This was the maximum level of drug loading attainable with this formulation due to solubility constraints of the solvent. Crystals did not form after drying at any percentage below this level with this formulation.
  • the 30% vitamin E formulation has a maximum solubility of just over 5% for the rapamycin and the 70% vitamin E formulation has a maximum solubility of greater than 48%.
  • a bio-absorbable carrier component in combination with a vitamin E compound was made by mixing 3.5 grams of Vitamin E and 1.5 grams of fish oil to form a base coating (70% vitamin E/30% fish oil).
  • a sample was then prepared by first dissolving 41 mg of melatonin in 270 mg of NMP (N-methyl-2-pyrrolidone). After the drug was fully dissolved in the solvent, 316 mg of the 70% vitamin E/30% fish oil base coat was added and the solution was vortexed until thoroughly mixed. A drop of the coating was then placed on a microscope slide and the sample was dried over night under vacuum in a bell jar. This was the maximum level of drug loading (11.5%) attainable with this formulation before crystals began to form after drying.
  • a bio-absorbable carrier component in combination with a vitamin E compound was then made by mixing 3.5 grams of vitamin E and 1.5 grams of fish oil fatty acids (FOFA) to form a base coating (70% vitamin E/30% FOFA).
  • a sample was then prepared by first dissolving 81.5 mg of melatonin in 120 mg of NMP (N-methyl-2-pyrrolidone). After the drug was fully dissolved in the solvent, 209 mg of the 70% vitamin E/30% FOFA base coat was added and the solution was vortexed until thoroughly mixed. A drop of the coating was then placed on a microscope slide and the sample was dried over night under vacuum in a bell jar. This was the maximum level of drug loading attainable (28%) with this formulation before crystals began to form after drying.
  • Melatonin formulated with 70% vitamin E and 30% fish oil formulation has a maximum solubility of 11.5%. When a 70% vitamin E and 30% fish oil fatty acid formulation is used with melatonin, the maximum solubility increases to greater than 28%.
  • a bio-absorbable carrier component in combination with a vitamin E compound was made by mixing 3.5 grams of vitamin E and 1.5 grams of fish oil to form a base coating (70% vitamin E/30% fish oil).
  • a sample was then prepared by first dissolving 8.4 mg of paclitaxel in 153 mg of ethanol. After the drug was fully dissolved in the solvent, 162.4 mg of the 70% vitamin E/30% fish oil base coat was added and the solution was vortexed until thoroughly mixed. A drop of the coating was then placed on a microscope slide and the sample was dried over night under vacuum in a bell jar. This was the maximum level of drug loading (4.9%) attainable with this formulation before crystals began to form after drying.
  • a bio-absorbable carrier component in combination with a vitamin E compound was then made by mixing 3.5 grams of vitamin E and 1.5 grams of fish oil to form a base coating (70% vitamin E/30% fish oil).
  • a sample was then prepared by first dissolving 8.4 mg of paclitaxel in 153 mg of NMP (N-methyl-2-pyrrolidone). After the drug was fully dissolved in the solvent, 162.4 mg of the 70% vitamin E/30% fish oil base coat was added and the solution was vortexed until thoroughly mixed. A drop of the coating was then placed on a microscope slide and the sample was dried over night under vacuum in a bell jar. This was the minimum level of drug loading (4.9%) tested with this formulation and crystals formed after drying.
  • a bio-absorbable carrier component in combination with a vitamin E compound was made by mixing 3.5 grams of vitamin E and 1.5 grams of fish oil to form a base coating (70% vitamin E/30% fish oil).
  • a sample was then prepared by first dissolving 23.7 mg of melatonin in 213.7 mg of ethanol. After the drug was fully dissolved in the solvent, 244.8 mg of the 70% vitamin E/30% fish oil base coat was added and the solution was vortexed until thoroughly mixed. A drop of the coating was then placed on a microscope slide and the sample was dried over night under vacuum in a bell jar. At this level of drug loading (9%) there were crystals that formed in this formulation after drying.
  • a bio-absorbable carrier component in combination with a vitamin E compound was then made by mixing 3.5 grams of vitamin E and 1.5 grams of fish oil to form a base coating (70% vitamin E/30% fish Oil).
  • a sample was then prepared by first dissolving 43.2 mg of melatonin in 394.7 mg of NMP (N-methyl-2-pyrrolidone). After the drug was fully dissolved in the solvent, 449.2 mg of the 70% vitamin E/30% fish oil base coat was added and the solution was vortexed until thoroughly mixed. A drop of the coating was then placed on a microscope slide and the sample was dried over night under vacuum in a bell jar. This was a similar level of drug loading (9%) tested with this formulation and no crystals formed after drying.

Abstract

A method for the provision of a coating on an implantable medical device results in a medical device having a bio-absorbable coating. The coating includes a bio-absorbable carrier component. In addition to the bio-absorbable carrier component, a dissolved therapeutic agent component can also be provided. The coated medical device is implantable in a patient to effect controlled delivery of the coating, including the dissolved therapeutic agent, to the patient.

Description

    RELATED APPLICATIONS
  • This application claims priority to, and the benefit of, co-pending U.S. Provisional Application No. 60/613,745, Sep. 28, 2004, for all subject matter common to both applications. The disclosure of said provisional application is hereby incorporated herein by reference in its entirety. This application also relates to co-pending U.S. patent application Ser. No. 11/______ (Attorney Docket No. ATA-426), filed concurrently with this application on Sep. 28, 2005.
  • FIELD OF THE INVENTION
  • The present invention relates to coatings and preparations of coatings for medical devices for the delivery of one or more biologically active agents, and more particularly, the present invention relates to coatings capable of containing one or more biologically active components.
  • BACKGROUND OF THE INVENTION
  • Percutaneous transluminal coronary angioplasty (PTCA), also known as balloon angioplasty, is a technique widely used for treating intravascular diseases, such as atherosclerosis, and other vascular occlusions. PTCA involves the use of a balloon-tipped catheter inserted directly into the arteries and vessels of a subject until the occluded site is reached, whereupon the balloon is expanded. The inflation of the balloon forces the lumen open, allowing blood flow to be restored. However, while PTCA is effective in the short-term, approximately 30-50% of all cases of balloon angioplasty alone require follow-up angioplasty due to restenosis, or re-narrowing of the blood vessel or artery.
  • Restenosis is caused by three pathogenic factors: elastic recoil of the artery, late-stage remodeling of the artery and hyperproliferation of the smooth muscle cells of the artery. This hyperproliferation, called neointimal hyperplasia, occurs as a result of the body's natural response to the arterial injury caused by the PTCA procedure. Upon the deployment of the balloon catheter, small tears develop in the artery wall triggering an inflammatory response. Growth factors and cytokines produced during the inflammatory response activate smooth muscle cell proliferation and migration, which can form an obstructing neointima, which, in turn, leads to decreased blood flow through the artery.
  • Prevention of occlusive thrombus after PTCA can be accomplished by the administration of oral high-dose, systematic anti-platelet drug therapy in combination with aspirin. This course of action has been shown to limit early complications after PTCA by approximately 35%; however, serious bleeding complications and other side effects can occur. Additionally, an orally administered drug may not achieve the desired effect in the area of the body in which it is needed. Furthermore, success by oral medication depends entirely on patient compliance.
  • Currently, the only long term approach to preventing restenosis is by utilizing a medical device, such as a stent, as an arterial structural support. While deployment of a stent after PTCA effectively eliminates elastic recoil and counteracts arterial remodeling, in-stent restenosis is still a serious problem due to neointimal hyperplasia. Introduction and presence of the stent itself can create regions of trauma in the artery, causing the same inflammatory response as the PTCA procedure.
  • Stent-based drug delivery has been developed in an attempt to prevent in-stent restenosis. Local delivery of one or more therapeutic agents by the use of a drug-eluting stent shows promise as a solution to the problems of both early and late complications due to the PTCA procedure. A number of therapeutic agents have been studied for use with stents including anticoagulants (heparin, hirudin), anti-platelet agents (abciximab), anti-inflammatory drugs (dexamethasone), anti-migratory agents (batimastat) and anti-proliferative agents (sirolimus, paclitaxel, actinomycin D).
  • Typically, the drug-eluting stent is coated with a polymeric material. The polymer may improve the quality of the stent by strengthening it or by smoothing the surface of the stent to minimize damage to the endothelium. In addition, the polymer may serve as the component used to adhere the therapeutic agent to the stent itself. Furthermore, the polymer may serve as the vehicle for local drug delivery, for example, by serving as a drug depot and/or degrading such that the drug is released to the desired area. There are substantial concerns, however, regarding the lack of bio-compatibility of polymer stent coatings. An assortment of both biodegradable and non-biodegradable polymers have been shown to induce an inflammatory response within the coronary artery, including neointimal thickening (see, for example, van der Giessen, et al. Circulation 1996; 94:1690-1697; De Schreerder, et al Atherosclerosis 1995; 114:105-114, incorporated herein by reference in their entirety).
  • There is a need, then, to produce a drug-eluting stent without a polymeric coating. However, a coating is needed to replace the functions performed by the polymer. For example, a coating is needed to dissolve the therapeutic agent, as well as serve as the element to adhere the therapeutic agent to the stent. In addition, the coating would also be the vehicle for local delivery for the therapeutic agent.
  • U.S. Patent Application Publication No. 20030191179 is directed to a method of administration of paclitaxel formulated with a vitamin E derivative. The composition for delivery of paclitaxel comprises paclitaxel, a solvent, and a pharmaceutically acceptable, water-miscible solubilizer which has the general structure of R1COOR2, R1CONR2 and R1COR2, wherein R1 is a hydrophobic C3-C50 alkane, alkene or alkyne, and R2 is a hydrophilic moiety. The publication indicates that the solubilizer can be an esterified fatty acid or alpha-tocopherol polyethylene glycol succinate, which is a water-miscible derivative of alpha-tocopherol.
  • PCT Application Publication No. WO 99/25336 is directed to a method for preventing restenosis in a patient by administering a prophylactically effective amount a composition of a tocotrienol or a mixture of tocotrienols. The publication is additionally directed to a method for preventing restenosis in a patient undergoing arterial angioplasty by coating the external surface of the angioplastic balloon with a composition containing tocotrienols. These compositions are prepared by combining one or more tocotrienols with an acceptable carrier. Suitable carriers include glycols, parabens, glycerin, alcohols, petrolatum oils and waxes. The '336 patent application treats the tocotrienols as the therapeutic agent for treating restenosis that is contained within a carrier component.
  • U.S. Patent Application Publication No. 20040156879 is directed to a method of manufacturing oxidation resistant medical implants and, in particular, antioxidant-doped medical devices containing cross-linked polymers. The method includes doping consolidated polyethylene, such as ultra-high molecular weight polyethylene (UHMWPE), with anti-oxidants before, during or after crosslinking the consolidated polyethylene. The patent application indicates that the doping of the consolidated polyethylene can be carried out by diffusion of an antioxidant. Suitable antioxidants include alpha- and delta-tocopherols; propyl, octyl, or dedocyl galates; lactic, citric, and tartaric acids and their salts; orthophosphates, tocopherol acetate and vitamin E. The doping method involves soaking the consolidated UHMWPE in the antioxidant or in a solution of the antioxidant when the antioxidant is dissolved in ethanol. The '879 patent application calls for the use of a consolidated polyethylene in the preparation of the described medical devices.
  • U.S. Pat. No. 6,833,004 is directed to a stent with a biologically and physiologically active substance stably loaded onto the stent main body such that the biologically and physiologically active substance does not decompose or degrade, but, once implanted, the biologically and physiologically active substance undergoes sustained release. The stent includes a main body with a sustained release coating made up of two layers: a layer containing the biologically and physiologically active substance and a polymer layer formed on top of the biologically and physiologically active substance layer. If the biologically and physiologically active substance is unable to adhere to the wire member constituting the stent main body, then the layer containing the biologically and physiologically active substance can be supplemented with an additional component which will impart tackiness to the biologically and physiologically active substance. For example, if the biologically and physiologically active substance is a fat soluble substance, the additional component is a low molecular weight higher fatty acid having a molecular weight of up to 1000, such as a fish oil, a vegetable oil or a fat soluble vitamin such as vitamin A or vitamin E. The medical device in the '004 patent is treated with a polymeric layer after the application of the biologically and physiologically active substance, with or without the additional component.
  • U.S. Pat. No. 6,117,911 is directed to the use of compounds and different therapies for the prevention of vascular and non-vascular pathologies. The '911 patent discusses the possibility of using many different types of delivery methods for a therapeutic agent or agents to prevent various vascular and non-vascular pathologies. One such approach is described as providing a method of preventing or treating a mammal having, or at risk of developing, atherosclerosis, including administering an amount of a combination of aspirin or an aspirinate and at least one omega-3 fatty acid, wherein said amount of omega-3 fatty acid is effective to maintain or increase the level of TGF-beta so as to provide a synergistic effect with a therapeutic compound to inhibit or reduce vessel lumen diameter diminution. As such, the patent discusses some of the therapeutic benefits of primarily systemic administration of omega-3 fatty acids, such as those found in fish oil, to affect TGF-beta levels when a therapeutic agent is combined with aspirin or aspirinate. That is, the dose or concentration of omega-3-fatty acid required to increase the level of TGF-beta is significantly greater, requiring long term systemic delivery.
  • U.S. Patent Application No. 20030077310 is directed to coated stents, methods of making coated stents and methods of using coated stents, wherein the coating contains unreacted HMG-CoA reductase inhibitor in combination with a carrier. The carrier can either be polymeric or non-polymeric. When the carrier is non-polymeric, it can be a C6 to C18 fatty acid, a bio-compatible wax, oil or gel, or a mixture of one or more of a wax, an oil, a gel, and a fatty acid. The non-polymeric liquid carrier can also be a hydrophobic liquid, such as a C4-C36 fatty acid, for example, oleic or stearic acid, or an oil, such as peanut oil, cottonseed oil, mineral oil, or other low molecular weight oils (C4-C36).
  • U.S. Pat. No. 6,610,035 is directed to an implantable medical device with a bi-layer lubricious coating. The first layer consists of a hydrophilic polymeric hydrogel layer which can swell or dissolve upon exposure to an aqueous environment. The second layer of the coating comprises a hydrophobic coating, which can be silicone based or a naturally occurring composition including olive oil, paraffin oil, corn oil, sesame oil, fish oil, and vegetable oil. The medical devices described by the '035 patent are treated with a hydrophilic polymer gel prior to the addition of a hydrophilic coating.
  • U.S. Patent Application No. 20030083740 is directed to a method of forming liquid coatings for medical devices made from biodegradable materials in liquid, low melting solid or wax forms which further degrade upon implantation without producing harmful fragments. The liquid coatings additionally can contain biologically active compounds which are released upon degredation of the coatings after implantation. The carrier component of the coating composition can be hydrophobic, bio-compatible and either polymeric or non-polymeric. Suitable non-polymeric carrier components comprise vitamin E or its derivatives, oleic acid, stearic acid, mineral oil, peanut oil, or cottonseed oil, alone or in combination.
  • U.S. Pat. No. 6,610,068 is directed to a catheter device with a guide member lumen filled with a lubricious material. The method of filling the guide member lumen with a lubricious material eliminates the need for flushing the catheter device before and during surgical procedures and provides a lubricant for easy maneuvering of the catheter over the guide member. The '068 patent indicates that the lubricious material can include both hydrophobic and hydrophilic materials. Specifically, the hydrophobic materials can include silicone based lubricants, glycerine, olive oil, cottonseed oil, peanut oil, fish oil, vegetable oil, sesame oil, and vitamin E. Vitamin E, if used, can also act as an antioxidant. The antioxidant capability of vitamin E improves the long term stability of the lubricious coating.
  • PCT Application Publication No. WO 02/100455 is directed to ozonated medical devices and methods of using ozone to prevent complications from indwelling medical devices. The application discusses having the ozone in gel or liquid form to coat the medical device. The ozone can be dissolved in olive oil, or other types of oil, to form a gel containing ozone bubbles, and the gel applied to the medical device as a coating. The application later asserts a preference for the gel or other coating formulation to be composed so that the ozone is released over time. However, there is no indication in the application as to how a slow controlled release of ozone can be affected. There is no enablement to a long term controlled release of ozone from the olive oil gel, however, there is mention of use of biocompatible polymers to form the coating that holds and releases the ozone. Other drugs are also suggested for combination with the ozone for delivery to a targeted location. The application later describes different application methods for the coating, including casting, spraying, painting, dipping, sponging, atomizing, smearing, impregnating, and spreading.
  • A paper entitled “Evaluation of the Biocompatibility and Drug Delivery Capabilities of Biological Oil Based Stent Coatings”, by Shengqiao Li of the Katholieke Universiteit Leuven (incorporated herein by reference in its entirety), discusses the use of biological oils as a coating for delivering drugs after being applied to stents. Three different coatings were discussed, a glue coating (cod liver oil mixed with 100% ethanol at a 1:1 ratio), a vitamin E coating (97% vitamin E oil solution mixed with 100% ethanol at a 1:1 ratio), and a glue+vitamin E coating (cod liver oil and 97% vitamin E oil solution mixed with 100% ethanol at a 1:1 ratio). Bare stents and polymer coated stents, along with stents having each of the above coatings, were implanted into test subjects, and analyzed over a four week period. At the end of the period, it was observed that the bare stents and polymer coated stents resulted in some minor inflammation of the tissue. The main finding of the study was that the glue coatings have a good biocompatibility with coronary arteries, and that the glue coating does not affect the degree of inflammation, thrombosis, and neointimal proliferation after endovascular stenting compared with the conventional stenting approach. A further hypothesis asserted was that the oil coating provided lubrication to the stent, thus decreasing the injury to the vascular wall.
  • The study went on to analyze the drug loading capacity of biological oil based stent coatings. Balloon mounted bare stents were dip-coated in a biological oil solution with the maximal solubilizable amount of different drugs (a separate drug for each trial), and compared with polymer coated, drug loaded, stents. According to the release rate curves, there was a clear indication that drug release was fast in the first 24 hours with more than 20% of the drug released, for the oil based coatings. The release rate after the first 24 hours was much slower, and continued for a period up to about six weeks.
  • Another aspect of the study looked at the efficacy of drug loaded biological stents to decrease inflammation and neointimal hyperplasia in a porcine coronary stent model. In this part of the study, glue or modified glue (biological oil) coated stainless steel stents were loaded with different drugs. The result was that the characteristics of the particular drug loaded onto the stent were the major factor to the reduction of restenosis, and the biological oil did not have a major impact on either causing or reducing inflammation.
  • A further comment indicated that in the studies comparison was made between biological oil based drug loaded stents and bare stents to find differences in inflammation, injury, and hyperplasia. Inflammation, injury, and neointimal hyperplasia resulted in in-stent area stenosis. Any anti-inflammation observed was the result of the particular drug loaded on the stent, regardless of biological oil, or polymer, coating.
  • A paper entitled “Addition of Cytochalasin D to a Biocompatible Oil Stent Coating Inhibits Intimal Hyperplasia in a Porcine Coronary Model” by Koen J. Salu, et al (Coronary Artery Disease 2003; 14:545-555, incorporated herein by reference in its entirety) discusses the use of a natural oil as a stent coating and the efficacy of using a therapeutic agent combined with the natural oil coating for the prevention of restenosis. The study first performed a histopathological evaluation of eicosapentaenoic acid oil coated stents compared with bare, uncoated stents. A series of stents coated in eicosapentaenoic acid oil and bare stents were implanted into test subjects and were analyzed after 5 days and again after 4 weeks. In all cases, there was an identical tissue response between the bare stents and the eicosapentaenoic acid oil coated stents. It was also found that the oil-coating did not elicit a hyperproliferative or inflammatory response. The study proposed that the lack of inflammation or hyperproliferation of the coated stent was due to the properties of eicosapentaenoic acid, which exerts anti-inflammatory effects and inhibit vascular smooth muscle cell proliferation in vitro.
  • Another aspect of the study compared eicosapentaenoic acid oil coated stents with stents coated with a therapeutic agent solubilized in eicosapentaenoic acid oil. The therapeutic agent examined was cytochalasin D, a lipophilic, cell-permeable fungal metabolite that inhibits the polymerization of actin into microfilaments. The results of this aspect of the study indicated that the inclusion of the therapeutic agent led to 39% less intimal hyperplasia and 38% less area stenosis when compared to the control group.
  • PCT Application Publication No. WO 03/039612 is directed to an intraluminal device with a coating containing a therapeutic agent. The publication describes coating an intraluminal device with a therapeutic agent comprised of a matrix that sticks to the intraluminal device. The matrix is formed of a bio-compatible oil or fat, and can further include alpha-tocopherol. The publication further indicates that an oil or fat adheres sufficiently strongly to the intraluminal device so that most of the coating remains on the intraluminal device when it is inserted in a body lumen. The publication further states that the oil or fat slows the release of the therapeutic agent, and also acts as an anti-inflammatory and a lubricant. The publication goes on to indicate that the oil or fat can be chemically modified, such as by the process of hydrogenation, to increase their melting point. Alternatively, synthetic oils could be manufactured as well. The oil or fat is further noted to contain fatty acids.
  • The '612 publication provides additional detail concerning the preferred oil or fat. It states that a lower melting point is preferable, and a melting point of 0° C. related to the oils utilized in experiments. The lower melting point provides a fat in the form of an oil rather than a wax or solid. It is further stated that oils at room temperature can be hydrogenated to provide a more stable coating and an increased melting point, or the oils can be mixed with a solvent such as ethanol. Preferences were discussed for the use of oils rather than waxes or solids, and the operations performed on the fat or oil as described can be detrimental to the therapeutic characteristics of some oils, especially polyunsaturated oils containing omega-3 fatty acids.
  • The above-described references do refer to the use of oils and fats as a drug delivery platform. There is indication that the coatings described in the above references are bio-absorbable, while also providing the release of biologically active components, such as drugs. Additionally, many of the above-described patents and patent applications require the use of a polymeric material, which serves as either a base upon which a drug coating is applied, a substance mixed in with the drug to form the coating, or a top coating applied over a previously applied drug coating to control the release of the drug. However, there is no realization of the difficulty of using an oil having its own therapeutic characteristics for the solubilization and release of a therapeutic agent.
  • U.S. Pat. No. 6,761,903 is directed to pharmaceutical compositions capable of solubilizing therapeutically effective amounts of therapeutic agents. The patent discusses pharmaceutical compositions having a carrier and a therapeutic agent, as well as pharmaceutical composition comprising an oil soluble vitamin and a carrier. The carrier for both pharmaceutical compositions includes a triglyceride in combination with at least two surfactants, wherein one of the surfactants is hydrophilic. Suitable triglycerides include a number of oils, including fish oil, while suitable surfactants include a variety of fatty acid ester derivatives and polymers, transesterified products of oils and alcohols, mono- and diglycerides, sterols, sterol derivatives, polymer glycol alkyl ethers and alkyl phenols, sugar esters, POE-POP block co-polymers, and ionic surfactants, such as the salts of fatty acids and bile salts. The '903 patent further discusses the use of oil-soluble vitamins for improving the solubility and stability of therapeutic agents in the pharmaceutical compositions, and that there may be improved absorption or permeability of the therapeutic agents across an absorption barrier, such as a mucosal membrane.
  • The above-referenced patent does describe the use of an oil based pharmaceutical composition capable of solubilizing therapeutic agents. However, the '903 patent always requires the use of a hydrophilic surfactant and does not indicate the use of the pharmaceutical compositions described for medical devices.
  • What is desired is a bio-absorbable delivery agent having non-inflammatory and other therapeutically advantageous characteristics that is able to dissolve at least one therapeutic agent for the delivery of that therapeutic agent to body tissue.
  • SUMMARY OF THE INVENTION
  • There is a need for a bio-absorbable coating for application to an implantable medical device for therapeutic purposes. The present invention is directed toward further solutions to address this need.
  • In accordance with one embodiment of the present invention, a method is provided for dissolving an amount of one or more therapeutic agents in a bio-absorbable carrier component and a vitamin E compound. Accordingly, the steps of the method for dissolving an amount of one or more therapeutic agents can include: (a) identifying said therapeutic agent and an amount thereof to be dissolved; (b) selecting a solvent based on the identified therapeutic agent; (c) dissolving the identified amount of the therapeutic agent in said solvent to form a first mixture; (d) determining a ratio of the vitamin E compound and the bio-absorbable carrier component; (e) mixing the vitamin E compound and the bio-absorbable carrier component to form a second mixture; (f) combining the first mixture with the second mixture to form a homogeneous solution; and (g) removing the solvent from the homogeneous solution such that the therapeutic agent remains dissolved in the bio-absorbable carrier component and the vitamin E.
  • In accordance with one aspect of the present invention, a method is provided for dissolving an amount of one or more therapeutic agents in a bio-absorbable carrier component and a vitamin E compound. Accordingly, the steps of the method for dissolving an amount of one or more therapeutic agents can include: (a) identifying said therapeutic agent and an amount thereof to be dissolved; (b) determining a ratio of the vitamin E compound and the bio-absorbable carrier component; and (c) dissolving the identified amount of the therapeutic agent in the vitamin E compound and the bio-absorbable carrier component to form a homogenous mixture.
  • In accordance with one embodiment of the present invention, a method is provided for preparing a coating for a medical device. The coating can include an amount of one or more therapeutic agents dissolved in a bio-absorbable carrier component and a vitamin E compound. Accordingly, the steps of the method for preparing a coating for a medical device can include: (a) identifying said therapeutic agent and an amount thereof to be dissolved; (b) selecting a solvent based on the identified therapeutic agent; (c) dissolving the identified amount of the therapeutic agent in said solvent to form a first mixture; (d) determining a ratio of the vitamin E compound and the bio-absorbable carrier component; (e) mixing the vitamin E compound and the bio-absorbable carrier component to form a second mixture; (f) combining the first mixture with the second mixture to form a homogeneous solution; and (g) removing the solvent from the homogeneous solution such that the therapeutic agent remains dissolved in the bio-absorbable carrier component and the vitamin E.
  • In accordance with one aspect of the present invention, a method is provided for preparing a coating for a medical device. The coating can include an amount of one or more therapeutic agents dissolved in a bio-absorbable carrier component and a vitamin E compound. Accordingly, the steps of the method for preparing a coating for a medical device can include: (a) identifying said therapeutic agent and an amount thereof to be dissolved; (b) determining a ratio of the vitamin E compound and the bio-absorbable carrier component; and (c) dissolving the identified amount of the therapeutic agent in the vitamin E compound and the bio-absorbable carrier component to form a homogenous mixture.
  • In accordance with one aspect of the present invention, a method of making a coated medical device is provided. Accordingly, the steps of the method include providing the medical device and coating the medical device. In one embodiment, the coating includes an amount of one or more therapeutic agents dissolved in a solvent, a bio-absorbable carrier component and a vitamin E compound such that the coated medical device is implantable in a subject to effect delivery of the one or more therapeutic agents to a subject. Accordingly, the solvent can be a solvent compatible with the coating, therapeutic agent, and intended use. In one embodiment, the solvent can be ethanol, N-methyl-pyrrolidone or a combination thereof. The coating may further include a compatibilizer, a preservative or both. The method of making a coated medical device can further involve preparing the coating prior to application to the medical device. The steps of preparing the coating prior to the application to the medical device include: (a) identifying said therapeutic agent and an amount thereof to be dissolved; (b) selecting a solvent based on the identified therapeutic agent; (c) dissolving the identified amount of the therapeutic agent in said solvent to form a first mixture; (d) determining a ratio of the vitamin E compound and the bio-absorbable carrier component; (e) mixing the vitamin E compound and the bio-absorbable carrier component to form a second mixture; and (f) combining the first mixture with the second mixture to form a homogeneous solution. As above, the solvent can be a solvent compatible with the coating, therapeutic agent, and intended use. In one embodiment, the solvent can be ethanol, N-methylpyrrolidone or a combination thereof. In one embodiment, a further step includes removing the solvent after application of the coating to the medical device.
  • In accordance with one aspect of the present invention, a method of making a coated medical device is provided. Accordingly, the steps of the method include providing the medical device and coating the medical device. In one embodiment, the coating includes one or more therapeutic agents dissolved in a bio-absorbable carrier component and a vitamin E compound. The method of making a coated medical device can further involve preparing the coating prior to application to the medical device. The steps of preparing the coating prior to the application to the medical device include: (a) identifying said therapeutic agent and an amount thereof to be dissolved; (b) determining a ratio of the vitamin E compound and the bio-absorbable carrier component; and (c) dissolving the identified amount of the therapeutic agent in the vitamin E compound and the bio-absorbable carrier component to form a homogenous mixture.
  • In accordance with one aspect of the present invention, the method of making a coated medical device further includes providing a pre-treatment between the medical device and the coating. The pre-treatment can improve consistency and conformability and enhance the adhesion of the coating to the medical device. In one embodiment, wherein the pre-treatment is bio-absorbable. Accordingly, the pre-treatment can include at least one of a bio-absorbable carrier component, for example, fish oil. The bio-absorbable carrier component may be modified from its naturally occurring state to one of increased viscosity in the form of a cross-linked gel.
  • In accordance with one embodiment of the present invention, a coated medical device is provided. The coated medical device includes a coating having an amount of one or more therapeutic agents, a bio-compatible carrier component and a vitamin E compound such that the medical device is implantable in a subject to effect delivery of the one or more therapeutic agents to said subject. Accordingly, the medical device is implantable in a subject to effect delivery of the one or more therapeutic agents to the subject. The coated medical device may further include a compatabilizer, a preservative or a combination thereof. In accordance with another aspect of the present invention, the coated medical device further includes a solvent, wherein the solvent is selected based on the therapeutic agent. The solvent can be a solvent compatible with the coating, therapeutic agent, and intended use. In one embodiment, the solvent can be ethanol, N-methyl-pyrrolidone or a combination thereof.
  • The coated medical device can include a pre-treatment provided on the medical device having a bio-absorbable carrier component and a coating disposed on top of the pre-treatment. The pre-treatment can improve consistency and conformability and can enhance the adhesion of the coating. In another embodiment, the pre-treatment may comprise plasma, parylene, a hydrophobic polymer, or a hydrophilic polymer. The coating disposed on top of the pre-treatment can further include a second bio-absorbable carrier component, a vitamin E compound and an amount of one or more therapeutic agents. In various embodiments, the bio-absorbable carrier component includes a naturally occurring oil, a fish oil fatty acid, a free fatty acid, a fatty acid ester, a mono-, a di- or a triglyceride, an oxidized triglyceride, a partially hydrolyzed triglyceride or a combination thereof. In various embodiments, the coated medical device is implantable in a subject to effect delivery of one or more therapeutic agents to the subject. In accordance with one aspect of the present invention, the coated medical device further includes a compatabilizer, a preservative or a combination thereof. In accordance with one aspect of the present invention, the coated medical device further includes a solvent. In various embodiments, the solvent is selected based on the therapeutic agent. In various embodiments, the solvent can be a solvent compatible with the coating, therapeutic agent, and intended use. In one embodiment, the solvent can be ethanol, N-methyl-pyrrolidone or a combination thereof.
  • In accordance with one aspect of the present invention, the vitamin E compound can include one or more of alpha-tocopherol, beta-tocopherol, delta-tocopherol, gamma-tocopherol, alpha-tocotrienol, beta-tocotrienol, delta-tocotrienol, gamma-tocotrienol, alpha-tocopherol acetate, beta-tocopherol acetate, gamma-tocopherol acetate, delta-tocopherol acetate, alpha-tocotrienol acetate, beta-tocotrienol acetate, delta-tocotrienol acetate, gamma-tocotrienol acetate, alpha-tocopherol succinate, beta-tocopherol succinate, gamma-tocopherol succinate, delta-tocopherol succinate, alpha-tocotrienol succinate, beta-tocotrienol succinate, delta-tocotrienol succinate, gamma-tocotrienol succinate, vitamin E TPGS, mixed tocopherols, derivatives, analogs and pharmaceutically acceptable salts thereof. It should be noted that other antioxidants can be used to fulfill the role of vitamin E in this coating.
  • In accordance with one aspect of the present invention, the bio-absorbable carrier component contains lipids. The bio-absorbable carrier component can be a naturally occurring oil, a fish oil fatty acid, a free fatty acid, a mono-, di- or triglyceride, a fatty acid ester, an oxidized triglyceride, a partially hydrolyzed triglyceride or a combination thereof. In one embodiment, the bio-absorbable carrier component can be fish oil. The bio-absorbable carrier component can be modified from its naturally occurring state to a state of increased viscosity in the form of a cross-linked gel. The bio-absorbable carrier component can contain omega-3 fatty acids. In accordance with further aspects of the present invention, the cross-linked gel is formed of an oil or oil composition that is at least partially cured. The cross-linked gel can be a biological oil that is at least partially cured, including fish oil or other oils, including those oils containing lipids and/or omega-3 fatty acids.
  • It should be noted that the term cross-linked gel, as utilized herein with reference to the present invention, refers to a gel that is non-polymeric and is derived from an oil composition comprising molecules covalently cross-linked into a three-dimensional network by one or more of ester, ether, peroxide, and carbon-carbon bonds in a substantially random configuration. In various preferred embodiments, the oil composition comprises a fatty acid molecule, a glyceride, and combinations thereof.
  • Accordingly, the fish oil fatty acids includes one or more of arachidic acid, gadoleic acid, arachidonic acid, eicosapentaenoic acid, docosahexaenoic acid or derivatives, analogs and pharmaceutically acceptable salts thereof. In various embodiments, the free fatty acids include one or more of butyric acid, caproic acid, caprylic acid, capric acid, lauric acid, myristic acid, palmitic acid, palmitoleic acid, stearic acid, oleic acid, vaccenic acid, linoleic acid, alpha-linolenic acid, gamma-linolenic acid, behenic acid, erucic acid, lignoceric acid, analogs and pharmaceutically acceptable salts thereof.
  • In accordance with one aspect of the present invention, the therapeutic agent can include an antioxidant, an anti-inflammatory, an anti-coagulant, a drug to alter lipid metabolism, an anti-proliferative, an anti-neoplastic, an anti-fibrotic, an immunosuppressive, a tissue growth stimulant, a functional protein/factor delivery agent, an anti-infective agent, an imaging agent, an anesthetic, a chemotherapeutic agent, a tissue absorption enhancer, an anti-adhesion agent, a germicide, an antiseptic, a proteoglycan, a GAG, a gene or polynucleotide delivery agent, an analgesic, a polysaccharide (heparin), or a combination thereof. In various embodiments, the therapeutic agent can include one or more of rapamycin, melatonin, paclitaxel, a protein kinase C inhibitor, cerivastatin, cilostazol, fluvastatin, lovastatin, pravastatin or derivatives, prodrugs, analogs and pharmaceutically acceptable salts thereof.
  • In accordance with one aspect of the present invention, the coating can contain about 70% of a vitamin E compound and about 30% of a bio-absorbable carrier component, for example, fish oil. In one embodiment, bio-absorbable carrier component can be modified from its naturally occurring state to a state of increased viscosity in the form of a cross-linked gel. In another aspect of the present invention, the coating can contain about 50% of a vitamin E compound and about 50% of a bio-absorbable carrier component. Accordingly, the bio-absorbable carrier component can comprise a free fatty acid, for example, oleic acid.
  • In accordance with one aspect of the present invention, the coating is non-polymeric. In accordance with one aspect of the present invention the coating can inhibit restenosis and neointimal growth. In accordance with one aspect of the present invention, the coating can promote endothelialization. In accordance with one aspect of the present invention, the coating is bio-absorbable.
  • In accordance with one aspect of the present invention, the medical device can be a stent. In various embodiments, the stent is formed of a substance selected from the group consisting of stainless steel, Nitinol alloy, nickel alloy, titanium alloy, cobalt-chromium alloy, tantalum, magnesium, ceramics, metals, plastics, and polymers.
  • In accordance with one aspect of the present invention, applying the coating to the medical device can include at least one of dipping the medical device in the coating, spraying the coating on the medical device, painting the coating on the medical device, wiping the coating on the medical device, printing the coating on the device, applying the coating with an applicator and electrostatically applying the coating to the medical device. In various embodiments, the method of making a coated medical device further includes curing the coating on the medical device. Curing can involve applying at least one of heat, UV light, chemical cross-linker, or reactive gas to cure the coating. Curing with respect to the present invention generally refers to thickening, hardening, or drying of a material brought about by heat, UV, or chemical means.
  • In various embodiments, the method of making a coated medical device further includes sterilizing the coating and the medical device. Sterilization can involve use of at least one of ethylene oxide, gamma radiation, e-beam, steam, gas plasma, and vaporized hydrogen peroxide (VHP).
  • In accordance with one aspect of the present invention, the coated medical device further comprises hardening the bio-absorbable carrier. In various embodiments, the further comprising hardening the bio-absorbable carrier by mixing the bio-absorbable carrier with reactive oils or oil compounds such as mono, di or triglycerides, esters of fatty acids, free fatty acids, partially oxidized or partially hydrolyzed triglycerides.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • The aforementioned features and advantages, and other features and aspects of the present invention, will become better understood with regard to the following description and accompanying drawings, wherein:
  • FIG. 1 is a flow chart illustrating a method of dissolving a therapeutic agent, in accordance with one embodiment of the present invention;
  • FIG. 2 is a flow chart illustrating a method of making a coating for a medical device, in accordance with one embodiment of the present invention;
  • FIG. 3 is a diagrammatic illustration of a medical device, according to one embodiment of the present invention;
  • FIG. 4 is a cross-sectional view of the medical device in accordance with one aspect of the present invention;
  • FIG. 5 is a cross-sectional view of the medical device in accordance with another aspect of the present invention;
  • FIG. 6 is a flow chart illustrating a method of making the coated medical device of the present invention, in accordance with one embodiment of the present invention;
  • FIG. 7 is a flow chart illustrating a variation of the method of FIG. 6, in accordance with one embodiment of the present invention;
  • FIG. 8 is a flow chart illustrating a variation of the method of FIG. 6, in accordance with one embodiment of the present invention; and
  • FIG. 9 is a diagrammatic illustration of a coated medical device in accordance with one embodiment of the present invention.
  • DETAILED DESCRIPTION
  • FIGS. 1 through 9, wherein like parts are designated by like reference numerals throughout, illustrate examples of embodiments of solubilizing a therapeutic agent and of embodiments of a coated medical device according to the present invention. Although the present invention will be described with reference to the example embodiments illustrated in the figures, it should be understood that many alternative forms can embody the present invention. One of ordinary skill in the art will additionally appreciate different ways to alter the parameters of the embodiments disclosed, such as the size, shape, or type of elements or materials, in a manner still in keeping with the spirit and scope of the present invention.
  • FIG. 1 is a flowchart illustrating a method of the present invention, in the form of dissolving a therapeutic agent in a solvent, a vitamin E compound and a bio-absorbable carrier component, in accordance with one embodiment of the present invention. The term “bio-absorbable” as used herein generally refers to having the property or characteristic of being able to penetrate the tissue of a subject's body. In certain embodiments of the present invention the bio-absorbable substance is soluble in the phospholipid bi-layer of cells of body tissue, and therefore impacts how the bio-absorbable substance penetrates into the cells. In various embodiments, the bio-absorbable carrier can be bio-compatible. The term “bio-compatible” refers to materials that do not elicit a toxic or severe immunological response.
  • It should be noted that a bio-absorbable substance differs from a biodegradable substance. Biodegradable is generally defined as capable of being decomposed by biological agents, or capable of being broken down by microorganisms or biological processes. Biodegradation thus relates to the breaking down and distributing of a substance through the subject's body, verses incorporation into and/or utilization by the cells of the subject's body tissue. Biodegradable substances can cause inflammatory response due to either the parent substance or those formed during breakdown, and they may or may not be absorbed by tissues.
  • In further detail, the term “bio-absorbable” generally refers to having the property or characteristic of being able to penetrate the tissues of a patient's body. In example embodiments of the present invention, the bio-absorbable coating contains lipids, many of which originate as triglycerides. It has previously been demonstrated that triglyceride products such as partially hydrolyzed triglycerides and fatty acid molecules can integrate into cellular membranes and enhance the solubility of drugs into the cell. Whole triglycerides are known not to enhance cellular uptake as well as partially hydrolyzed triglycerides, because it is difficult for whole triglycerides to cross cell membranes due to their relatively large molecule size. Alpha-tocopherol can also integrate into cellular membranes resulting in decreased membrane fluidity and cellular uptake.
  • It is also known that damaged vessels undergo oxidative stress. A coating containing an antioxidant such as alpha-tocopherol may aid in preventing further damage by this mechanism.
  • Referring again to FIG. 1, a method of dissolving a therapeutic agent in a solvent, a vitamin E compound and a bio-absorbable carrier component involves determining the therapeutic agent to be dissolved (step 100). The therapeutic agents suitable for use in the invention are not particularly limited. The therapeutic agents can be hydrophilic, lipophilic, amphiphilic or hydrophobic, and can be dissolved in the bio-absorbable carrier, the solvent or the bio-absorbable carrier and the solvent. The therapeutic agent can be any agent having therapeutic value when administered to a subject, for example, a mammal. The therapeutic agent component can take a number of different forms including but not limited to anti-oxidants, anti-inflammatory agents, anti-coagulant agents, drugs to alter lipid metabolism, anti-proliferatives, anti-neoplastics, tissue growth stimulants, analgesics, functional protein/factor delivery agents, anti-infective agents, anti-imaging agents, anesthetic agents, therapeutic agents, tissue absorption enhancers, anti-adhesion agents, anti-migratory agents, pro-healing agents, ECM/Protein production inhibitors, germicides, antiseptics, proteoglycans, GAG's, gene delivery (polynucleotides), polysaccharides (heparin), rapamycin, melatonin, paclitaxel, a protein kinase C inhibitor, cerivastatin, cilostazol, fluvastatin, lovastatin, pravastatin or derivatives, analogs, prodrugs and pharmaceutically acceptable salts thereof, and any additional desired therapeutic agents such as those listed in Table 1 below.
    CLASS EXAMPLES
    Antioxidants Alpha-tocopherol, lazaroid, probucol, phenolic antioxidant,
    resveretrol, AGI-1067, vitamin E
    Antihypertensive Agents Diltiazem, nifedipine, verapamil
    Antiinflammatory Agents Glucocorticoids (e.g. dexamethazone,
    methylprednisolone), leflunomide, NSAIDS, ibuprofen,
    acetaminophen, hydrocortizone acetate, hydrocortizone
    sodium phosphate, macrophage-targeted bisphosphonates
    Growth Factor Angiopeptin, trapidil, suramin
    Antagonists
    Antiplatelet Agents Aspirin, dipyridamole, ticlopidine, clopidogrel, GP IIb/IIIa
    inhibitors, abcximab
    Anticoagulant Agents Bivalirudin, heparin (low molecular weight and
    unfractionated), wafarin, hirudin, enoxaparin, citrate
    Thrombolytic Agents Alteplase, reteplase, streptase, urokinase, TPA, citrate
    Drugs to Alter Lipid Fluvastatin, colestipol, lovastatin, atorvastatin, amlopidine
    Metabolism (e.g. statins)
    ACE Inhibitors Elanapril, fosinopril, cilazapril
    Antihypertensive Agents Prazosin, doxazosin
    Antiproliferatives and Cyclosporine, cochicine, mitomycin C, sirolimus
    Antineoplastics micophenonolic acid, rapamycin, everolimus, tacrolimus,
    paclitaxel, QP-2, actinomycin, estradiols, dexamethasone,
    methatrexate, cilostazol, prednisone, cyclosporine,
    doxorubicin, ranpirnas, troglitzon, valsarten, pemirolast, C-
    MYC antisense, angiopeptin, vincristine, PCNA ribozyme,
    2-chloro-deoxyadenosine
    Tissue growth stimulants Bone morphogeneic protein, fibroblast growth factor
    Promotion of hollow Alcohol, surgical sealant polymers, polyvinyl particles, 2-
    organ occlusion or octyl cyanoacrylate, hydrogels, collagen, liposomes
    thrombosis
    Functional Protein/Factor Insulin, human growth hormone, estradiols, nitric oxide,
    delivery endothelial progenitor cell antibodies
    Second messenger Protein kinase inhibitors
    targeting
    Angiogenic Angiopoetin, VEGF
    Anti-Angiogenic Endostatin
    Inhibitation of Protein Halofuginone, prolyl hydroxylase inhibitors, C-proteinase
    Synthesis/ECM formation inhibitors
    Antiinfective Agents Penicillin, gentamycin, adriamycin, cefazolin, amikacin,
    ceftazidime, tobramycin, levofloxacin, silver, copper,
    hydroxyapatite, vancomycin, ciprofloxacin, rifampin,
    mupirocin, RIP, kanamycin, brominated furonone, algae
    byproducts, bacitracin, oxacillin, nafcillin, floxacillin,
    clindamycin, cephradin, neomycin, methicillin,
    oxytetracycline hydrochloride, Selenium.
    Gene Delivery Genes for nitric oxide synthase, human growth hormone,
    antisense oligonucleotides
    Local Tissue perfusion Alcohol, H2O, saline, fish oils, vegetable oils, liposomes
    Nitric oxide Donor NCX 4016 - nitric oxide donor derivative of aspirin,
    Derivatives SNAP
    Gases Nitric oxide, compound solutions
    Imaging Agents Halogenated xanthenes, diatrizoate meglumine, diatrizoate
    sodium
    Anesthetic Agents Lidocaine, benzocaine
    Descaling Agents Nitric acid, acetic acid, hypochlorite
    Anti-Fibrotic Agents Interferon gamma-1b, Interluekin-10
    Immunosuppressive/Immunomodulatory Cyclosporine, rapamycin, mycophenolate motefil,
    Agents leflunomide, tacrolimus, tranilast, interferon gamma-1b,
    mizoribine
    Chemotherapeutic Agents Doxorubicin, paclitaxel, tacrolimus, sirolimus, fludarabine,
    ranpirnase
    Tissue Absorption Fish oil, squid oil, omega 3 fatty acids, vegetable oils,
    Enhancers lipophilic and hydrophilic solutions suitable for enhancing
    medication tissue absorption, distribution and permeation
    Anti-Adhesion Agents Hyaluronic acid, human plasma derived surgical
    sealants, and agents comprised of hyaluronate and
    carboxymethylcellulose that are combined with
    dimethylaminopropyl, ehtylcarbodimide, hydrochloride,
    PLA, PLGA
    Ribonucleases Ranpirnase
    Germicides Betadine, iodine, sliver nitrate, furan derivatives,
    nitrofurazone, benzalkonium chloride, benzoic acid,
    salicylic acid, hypochlorites, peroxides, thiosulfates,
    salicylanilide
    Antiseptics Selenium
    Analgesics Bupivicaine, naproxen, ibuprofen, acetylsalicylic acid
  • Some specific examples of therapeutic agents useful in the anti-restenosis realm include cerivastatin, cilostazol, fluvastatin, lovastatin, paclitaxel, pravastatin, rapamycin, a rapamycin carbohydrate derivative (for example as described in US Patent Application Publication 2004/0235762), a rapamycin derivative (for example as described in U.S. Pat. No. 6,200,985), everolimus, seco-rapamycin, seco-everolimus, and simvastatin.
  • Referring again to FIG. 1, the amount of the therapeutic agent is then identified (step 105). The amount of the therapeutic agent in the present invention, in one embodiment, can be an effective amount. The term “effective amount” as used herein, refers to that amount of a compound sufficient to result in amelioration of symptoms, e.g., treatment, healing, prevention or amelioration of the relevant medical condition, or an increase in rate of treatment, healing, prevention or amelioration of such conditions. When applied to an individual active ingredient, administered alone, an effective amount refers to that ingredient alone. When applied to a combination, an effective amount can refer to combined amounts of the active ingredients that result in the therapeutic effect, whether administered in combination, serially or simultaneously. In various embodiments, where formulations comprise two or more therapeutic agents, such formulations can be described as an effective amount of compound A for indication A and an effective amount of compound B for indication B, such descriptions refer to amounts of A that have a therapeutic effect for indication A, but not necessarily indication B, and amounts of B that have a therapeutic effect for indication B, but not necessarily indication A. In a further embodiment, one of the therapeutic agents may have a synergistic effect on another therapeutic agent in a combination of therapeutic agents. Moreover, each therapeutic agent may have a synergistic effect on any other therapeutic agent provided in the invention. As used herein, “synergy” or “synergistic effect” refers to an enhancement of the therapeutic properties of one or more therapeutic agents of the invention. Furthermore two or more compounds may be administered for the same or different indication with or without a true synergism. In another embodiment, compound A can have an enhancement effect on compound B and compound B can have an enhancement effect on compound A. In another embodiment, A and B may have no effect upon each other.
  • Actual dosage levels of the active ingredients in a therapeutic formulation of the present invention may be varied so as to obtain an amount of the active ingredients which is effective to achieve the desired therapeutic response without being unacceptably toxic. The selected dosage level will depend upon a variety of pharmacokinetic factors including the activity of the particular therapeutic formulations of the present invention employed, or the ester, salt or amide thereof, the route of administration, the time of administration, the duration of administration, the rate of excretion of the particular compounds being employed, the duration of the treatment, other drugs, compounds and/or materials used in combination with the particular compounds employed, and like factors well known in the medical arts.
  • Some specific examples of therapeutic agents useful in the anti-restenosis realm include cerivastatin, cilostazol, fluvastatin, lovastatin, paclitaxel, pravastatin, rapamycin, and simvastatin. Depending on the type of therapeutic agent component added to the coating, the resulting coating can be bio-absorbable if the therapeutic agent is also bio-absorbable. As described in the Summary of the Invention, the present invention relates to coating for a medical device in which the coating is formed of three primary components, the bio-absorbable carrier component, the vitamin E compound and a therapeutic agent component. The therapeutic agent component has some form of a therapeutic or biological effect. The bio-absorbable carrier component can also have a therapeutic or biological effect. It should again be noted that the bio-absorbable carrier component is different from the conventional bio-degradable substances utilized for similar purposes. The bio-absorbable characteristic of the carrier component enables the cells of the body tissue of a patient to absorb the bio-absorbable carrier component itself, rather than breaking down the carrier component into inflammatory by-products and disbursing said by-products of the component for ultimate elimination by the patient's body. Accordingly, anti-inflammatory drug dosages to the patient do not need to be increased to additionally compensate for inflammation caused by the carrier component, as is otherwise required when using polymer-based carriers that themselves cause inflammation
  • Referring again to FIG. 1, a solvent based on the therapeutic agent can be selected (step 110). In various embodiments, the solvent can be chosen based on the physical properties of the therapeutic agent. One skilled in the art will be able to determine the appropriate solvent to use. The solvent can be a solvent or mixture of solvents and include solvents that are generally acceptable for pharmaceutical use. Suitable solvents include, for example: alcohols and polyols, such as C2-C6 alkanols, 2-ethoxyethanol, ethanol, isopropanol, butanol, benzyl alcohol, ethylene glycol, propylene glycol, butanediols and isomers thereof, glycerol, pentaerythritol, sorbitol, mannitol, transcutol, dimethyl isosorbide, polyethylene glycol, and polypropylene glycol; amides, such as 2-pyrrolidone, 2-piperidone, 2-caprolactam, N-alkylpyrrolidone, N-methyl-2-pyrrolidone, N-hydroxyalkylpyrrolidone, N-alkylpiperidone, N-alkylcaprolactam, dimethylacetamide; esters, such as ethyl acetate, methyl acetate, butyl acetate, ethylene glycol diethyl ether, ethylene glycol dimethyl ether, propylene glycol dimethyl ether, ethyl proprionate, tributylcitrate, acetyl triethylcitrate, acetyl tributyl citrate, triethylcitrate, ethyl oleate, ethyl caprylate, ethyl cutyrate, tracetin, ε-caprolactone and isomers thereof, δ-valerolactorne and isomers thereof, β-butyrolactone and isomers thereof; and other solvents, such as water, dimethylsulfoxide, benzyl benzoate, ethyl lactate, acetone, methylethyl ketone, dimethylsolfone, tetrahydrofuran, decylmethylsufoxide, N,N-diethyl-m-toulamide or 1-dodecylazacycloheptan-2-one, hexane, chloroform, dichloromethane.
  • The amount of solvent that can be included in compositions of the present invention is not particularly limited. In accordance with one embodiment of the present invention, the amount of the therapeutic agent to be dissolved can be an amount up to the maximum amount that can be dissolved in the solvent, vitamin E compound and the bio-absorbable carrier component. The maximum amount of the therapeutic agent that can be dissolved is readily determined by simple mixing, as the presence of any non-dissolved therapeutic agent is apparent after solvent removal on visual inspection. In various embodiments, the amount of the therapeutic agent will be less than the maximum that can be dissolved. Upon administration to a subject of the therapeutic agent dissolved in the bio-absorbable carrier and the solvent, the amount of the given solvent can be limited to a pharmaceutically acceptable amount, which can be readily determined by one of skill in the art. In various aspects, it can be appropriate to include amounts of solvents in excess of pharmaceutically acceptable amounts, with excess solvent removed prior to providing the administration of the composition using conventional techniques such as evaporation.
  • Referring again to FIG. 1, the therapeutic agent and a solvent can be mixed together, for example, by vortexing, sonicating, stirring, rolling, or shaking, to form a first mixture (step 120).
  • Referring again to FIG. 1, the ratio of a vitamin E compound and the bio-absorbable carrier component is then determined (step 130). One skilled in the art would be able to readily determine the ratio by, for example, combining the therapeutic that is dissolved in a solvent with various combinations of vitamin E and bio-absorbable carrier components. The bio-absorbable carrier component can include fish oil, fish oil mono, di and triglycerides, free fatty acids, fatty acid esters, partially oxidized oil, or hydrolyzed oil and any derivatives. After the formulations are made the solvent is removed from the sample under vacuum and the drug formulation is inspected under a microscope for crystal formation. The level of soluble drug can be influenced by such factors as vitamin E level, fish oil level, fatty acid ester content, free fatty acid content, mono, di or triglyceride content, presence of oxidation, or by hydrolysis byproducts of the oil. The amount of soluble drug can also be effected by the solvent and/or solvent loading that is used to load the drug into the formulation.
  • Vitamin E describes a family of eight fat-soluble antioxidants, the four tocopherols, alpha-, beta-, gamma- and delta-(Formula I), and the four tocotrienols also alpha-, beta-, gamma- and delta-(Formula II):
    (I)
    Figure US20060088596A1-20060427-C00001
    (II)
    Figure US20060088596A1-20060427-C00002
    Tocopherol Structure Tocotrienol Structure R5, R7, R8
    Alpha-tocopherol Alpha-tocotrienol R5R7, R8 = CH3
    Beta-tocopherol Beta-tocotrienol R5, R8 = CH3; R7 = H
    Gamma-tocopherol Gamma-tocotrienol R7, R8 = CH3; R5 = H
    Delta-tocopherol Delta-tocotrienol R5, R7 = H; R8 = CH3
  • The term “vitamin E compound” as used herein generally refers to any compound of the vitamin E family, including derivatives, analogs, and pharmaceutically acceptable salts thereof. The vitamin E compound and include, for example, alpha-tocopherol, beta-tocopherol, delta-tocopherol, gamma-tocopherol, alpha-tocotrienol, beta-tocotrienol, delta-tocotrienol, gamma-tocotrienol, alpha-tocopherol acetate, beta-tocopherol acetate, gamma-tocopherol acetate, delta-tocopherol acetate, alpha-tocotrienol acetate, beta-tocotrienol acetate, delta-tocotrienol acetate, gamma-tocotrienol acetate, alpha-tocopherol succinate, beta-tocopherol succinate, gamma-tocopherol succinate, delta-tocopherol succinate, alpha-tocotrienol succinate, beta-tocotrienol succinate, delta-tocotrienol succinate, gamma-tocotrienol succinate, Vitamin E TPGS, derivatives, analogs, pharmaceutically acceptable salts and mixtures thereof. Suitable vitamin E compound analogs can be, for example, desmethyl-tocotrienol, didesmethyl-tocotrienol, P18 tocotrienol™, P25 tocotrienol, alpha-tocomonoenol. The vitamin E compounds can be conveniently isolated from biological materials or synthesized from commercially available starting materials by techniques known to those skilled in the art. In various embodiments, the vitamin E compounds can be in their isomerically pure form or be present as mixtures of isomers. For example, the vitamin E compounds can exist as the D-isomer, the L-isomer, or the D,L-racemic mixture.
  • In one embodiment, other fat soluble vitamins can be used in the invention. Suitable fat soluble vitamins include, for example, vitamin A, vitamin D, vitamin K, and derivatives, pharmaceutically acceptable salts, esters and amides thereof.
  • The term “bio-absorbable carrier component” as used herein refers to a composition comprising a naturally occurring oil, fish oil fatty acids, free fatty acids, fatty acid esters, triglycerides, diglycerides, monoglycerides, partially hydrolyzed oil, oxidized oil or a combination thereof. In one embodiment, the naturally occurring oil is fish oil. Suitable fish oils can be obtained, for example from a variety of fish and can include cod liver oil, shark liver oil and fish body oils. In various embodiments, the components of fish oil include triacylglycerol, diacylglycerol, monoacylglycerol, phospholipids, sterylesters, sterols, mixed tocopherols and free fatty acids. The quantities of total lipids may vary between different fish oils. In various embodiments, the fish oil is modified to a state of increased viscosity. The modification of the fish oil and be accomplished by techniques known to those skilled in the art.
  • The term “fatty acid” as used herein refers to compounds comprising carbon, hydrogen and oxygen arranged as a carbon skeleton with a carboxyl group at one end. Saturated fatty acids have all hydrogens, thus have no double bonds. Monounsaturated fatty acids have one double bond and polyunsaturated fatty acids have more than one double bond. Examples of common fatty acids are seen in Table 2.
    TABLE 2
    # of Carbon # of Double
    Common Name Atoms Bonds Scientific Name Sources
    Butyric acid 4 0 Butanoic acid Butterfat
    Caproic acid 6 0 Hexanoic acid Butterfat
    Caprylic acid 8 0 Octanoic acid Coconut oil
    Capric acid 10 0 Decanoic acid Coconut oil
    Lauric acid 12 0 Dodecanoic acid Coconut oil
    Myristic acid 14 0 Tetradecanoic acid Palm kernel
    oil
    Palmitic acid 16 0 Hexadecanoic acid Palm oil
    Palmitoleic acid 16 1 9-hexadecenoic acid Animal fats
    Stearic acid 18 0 Octadecanoic acid Animal fats
    Oleic acid 18 1 9-octadecenoic acid Olive oil
    Vaccenic acid 18 1 11-octadecenoic acid Butterfat
    Linoleic acid 18 2 9,12-octadecadienoic Safflower oil
    acid
    Alpha-linoleic acid 18 3 9,12,15- Flaxseed
    octadecatrienoic acid
    Gamma-linoleic 18 3 6,9,12-octadecatrienoic Borage oil
    acid acid
    Arachidic acid 20 0 Eicosanoic acid Peanut oil,
    fish oil
    Gadoleic acid 20 1 9-eicosenoic acid Fish oil
    Arachidonic acid 20 4 5,8,11,14- Liver fats
    eicosatetraenoic acid
    EPA 20 5 5,8,11,14,17- Fish oil
    eicosapentaenoic acid
    Behenic acid 22 0 Docasanoic acid Rapeseed oil
    Erucic acid 22 1 13-doxosenoic acid Rapeseed oil
    DHA 22 6 4,7,10,13,16,19- Fish oil
    docosahexaenoic acid
    Lignoceric acid 24 0 Tetraxosanoic acid Small
    amounts in
    most fats
  • Polyunsaturated fats can be further broken down into omega-3 fatty acids and omega-6 fatty acids. Omega-3 and omega-6 fatty acids are also known as essential fatty acids because they are important for maintaining good health, despite the fact that the human body cannot make them on its own. As such, omega-3 and omega-6 fatty acids must be obtained from external sources, such as food. Omega-6 fatty acids can be characterized as linoleic acids, gamma-linoleic acids and arachidonic acid. Omega-3 fatty acids can be further characterized as eicosapentaenoic acid (EPA), docosahexanoic acid (DHA), and alpha-linolenic acid (ALA). Both EPA and DHA are known to have anti-inflammatory effects and wound healing effects within the human body.
  • As used herein, the term “fish oil fatty acids” refers to those fatty acids which can be obtained from fish oil. Fish oil fatty acids can include, but are not limited to, arachidic acid, gadoleic acid, arachidonic acid, eicosapentaenoic acid, docosahexaenoic acid, derivatives, analogs, pharmaceutically acceptable salts, and combinations thereof.
  • As used herein, the term “free fatty acids” refers to those fatty acids which are not bound to other molecules. Bound fatty acids can be bound to compounds including, but not limited to, glycerides, glycerophospatides, glycosyldiglycerides, sterol esters, waxes, acylglycerols, cholesterol esters and glycospingolipids. Free fatty acids can be derived from their bound form by techniques well known in the art, such as saponification. Suitable free fatty acids can include butyric acid, caproic acid, caprylic acid, capric acid, lauric acid, myristic acid, palmitic acid, palmitoleic acid, stearic acid, oleic acid, vaccenic acid, linoleic acid, alpha-linolenic acid, gamma-linolenic acid, behenic acid, erucic acid, lignoceric acid, and derivatives, analogs and pharmaceutically acceptable salts thereof. In various embodiments, free fatty acids can also comprise fish oil fatty acids.
  • The ratio of the vitamin E compound to the bio-absorbable carrier component can be determined by techniques known to those skilled in the art. Accordingly, the bio-absorbable carrier can be about 70% of a bio-absorbable carrier component and about 30% of a vitamin E compound; about 70% of a vitamin E compound and about 30% of a bio-absorbable carrier component; or about 50% of a vitamin E compound and about 50% of a bio-absorbable carrier component.
  • Referring again to FIG. 1, the bio-absorbable carrier component and the vitamin E compound or a combination thereof are provided (step 130). In accordance with one aspect of the present invention, the bio-absorbable carrier component and the vitamin E compound can be mixed together, for example, by vortexing, sonicating, stirring, rolling, or shaking, to form a second mixture (step 140). Accordingly, the second mixture can be mixed first, the first mixture can be mixed first, or the first mixture and the second mixture can be mixed substantially simultaneously. The first mixture and the second mixture can then be mixed (step 150) such that the therapeutic agent is dissolved, or, if the therapeutic agent was previously dissolved in the solvent, the therapeutic agent remains dissolved. After mixing the first mixture and the second mixture, the solvent is removed by techniques well known in the art, for example, by vacuum, washing, heating, evaporation and the like (step 160). Upon removal of the solvent, the resulting solution can be inspected for presence of crystal formation by techniques well known in the art (step 170). Suitable techniques for inspection for the presense of crystal formation include, for example, visual inspection, microscopic inspections, as well as chemical analysis techniques such as scanning electron microscopy (SEM), environmental scanning electron microscopy (ESEM), differential scanning calorimetry (DSC) and atomic force microscopy (AFM).
  • FIG. 2 is a flowchart illustrating a method of the present invention, in the form preparing a coating for medical devices, in accordance with one embodiment of the present invention. A combination of the first mixture and the second mixture is provided (step 200) and the solvent is removed (step 205), which forms the coating for a medical device (step 210).
  • In accordance with one aspect of the present invention, a coated medical device is provided. The medical devices of the invention can be, for example, a catheter, a guidewire, a cannula, a stent, a vascular or other graft, a cardiac pacemaker lead or lead tip, a cardiac defibrillator lead or lead tip, a heart valve, or an orthopedic device, appliance, implant, or replacement. In one aspect, the medical device is a stent. The term “stent” refers to what is known in the art as a metallic or polymeric cage-like device that is used to hold bodily vessels, such as blood vessels, open.
  • The device and methods of the present invention can be useful in a wide variety of locations within a human or veterinary patient, such as in the esophagus, trachea, colon, biliary tract, urinary tract and vascular systems, including coronary vessels, as well as for subdural and orthopedic devices, implants or replacements. They can be advantageous for reliably delivering suitable bioactive materials during or following an intravascular procedure, and find particular use in preventing abrupt closure and/or restenosis of a blood vessel. More particularly, they permit, for example, the delivery of an effective amount of one or more therapeutic agents to the region of a blood vessel which has been opened by PTA. The coated medical devices of the invention can be implantable in a subject. As used here, the term “subject” includes animals (e.g., vertebrates, amphibians, fish), mammals (e.g., cats, dogs, horses, pigs, cows, sheep, rodents, rabbits, squirrels, bears), and primates (e.g., chimpanzees, gorillas, and humans).
  • The device of the present invention can be formed of a substance selected from the group consisting of stainless steel, nickel, silver, platinum, gold, titanium, tantalum, iridium, tungsten, Nitinol, inconel, Nitinol alloy, nickel alloy, titanium alloy, cobalt-chromium alloy, magnesium, tantalum, ceramics, metals, plastics, and polymers or the like.
  • FIG. 3 illustrates a stent 10 in accordance with one embodiment of the present invention. The stent 10 is representative of a medical device that is suitable for having a coating applied thereon to effect a therapeutic result. The stent 10 is formed of a series of interconnected struts 12 having gaps 14 formed therebetween. The stent 10 is generally cylindrically shaped. Accordingly, the stent 10 maintains an interior surface 16 and an exterior surface 18.
  • One of ordinary skill in the art will appreciate that the illustrative stent 10 is merely exemplary of a number of different types of stents available in the industry. For example, the strut 12 structure can vary substantially. The material of the stent can also vary from a metal, such as stainless steel, Nitinol, nickel, and titanium alloys, to cobalt chromium alloy, ceramic, plastic, and polymer type materials. One of ordinary skill in the art will further appreciate that the present invention is not limited to use on stents. Instead, the present invention has application on a wide variety of medical devices. For purposes of clarity, the following description will refer to a stent as the exemplar medical device. The terms medical device and stent are interchangeable with regard to the applicability of the present invention. Accordingly, reference to one or another of the stent, or the medical device, is not intended to unduly limit the invention to the specific embodiment described.
  • FIG. 4 illustrates one example embodiment of the stent 10 having a coating 20 applied thereon in accordance with the present invention. FIG. 5 is likewise an alternative embodiment of the stent 10 having the coating 20 also applied thereon. The coating 20 is applied to the medical device, such as the stent 10, to provide the stent 10 with different surface properties, and also to provide a vehicle for therapeutic applications.
  • In FIG. 4, the coating 20 is applied on both the interior surface 16 and the exterior surface 18 of the strut 12 forming the stent 10. In other words, the coating 20 in FIG. 4 substantially encapsulates the struts 12 of the stent 10. In FIG. 5, the coating 20 is applied only on the exterior surface 18 of the stent 10, and not on the interior surface 16 of the stent 10. The coating 20 in both configurations is the same coating; the difference is merely the portion of the stent 10 that is covered by the coating 20. One of ordinary skill in the art will appreciate that the coating 20 as described throughout the description can be applied in both manners shown in FIG. 4 and FIG. 5, in addition to other configurations such as, partially covering select portions of the stent 10 structure. All such configurations are described by the coating 20 reference.
  • It should further be emphasized that the bio-absorbable nature of the coating results in the coating 20 being absorbed over time by the cells of the body tissue. The coating, or break down products of the coating, will not induce an inflammatory response. In short, the coating 20 is generally composed of fatty acids, including in some instances omega-3 fatty acids bound to trigycerides, and potentially also including a mixture of free fatty acids and vitamin E. The triglycerides are broken down by lipases (enzymes) which result in free fatty acids that can be transported across cell membranes. Subsequently, fatty acid metabolism by the cell occurs to metabolize any substances originating with the coating. The bio-absorbable nature of the coating of the present invention thus results in the coating being absorbed, leaving only an underlying delivery or other medical device structure. The bio-absorbable carrier component does not induce a foreign body response. The modification of the oils from a more liquid state to a more solid, but still flexible, physical state is implemented through a curing process. Curing with respect to the present invention generally refers to thickening, hardening, or drying of a material brought about by heat, UV, or chemical means. As the oils are cured, especially in the case of fatty acid-based oils such as fish oil, cross-links form creating a gel. As the curing process is performed over increasing time durations and/or increasing temperature conditions and/or increasing UV output, more cross-links form transitioning the gel from a relatively liquid gel to a relatively solid-like, but still flexible, gel structure.
  • The coatings for the medical device of the present invention can include an amount of one or more therapeutic agents dissolved in a bio-absorbable carrier component and a vitamin E compound. The coating for the medical device can additionally include an amount of one or more therapeutic agents dissolved in a bio-absorbable carrier component, a vitamin E compound and a solvent. The coatings of the invention can further contain a compatibilizer, a preservative or both. As used herein, the term “compatibilizer” refers to an added component of the coating that may prevent crystal formation after the removal of solvent. Suitable compatibilizers include, for example Vitamin E or its derivatives, free fatty acids, fatty acid esters, partially oxidized triglycerides, hydrolyzed triglycerides, therapeutic agents, antioxidants, surfactants and any amphiphilic materials. The term “preservative”, as used herein, refers to an added component of the coating that can prevent the deterioration of the therapeutic agent, the coating or both. Suitable preservatives include, for example, vitamin E or its derivatives, as well as antioxidant materials.
  • Accordingly, the coatings of the invention are non-polymeric. As used herein, the term “polymer” is a generic term that is normally used by one of ordinary skill in the art to describe a substantially long molecule formed by the chemical union of five or more identical combining units called monomers. In most cases, the number of monomers is quite large (3500 for pure cellulose). See Hawley's Condensed Chemical Dictionary, page 900. Prior attempts to create drug delivery platforms such as coatings on stents primarily make use of polymer based coatings containing one or more therapeutic agents. Regardless of how much of the therapeutic agent would be most beneficial to the damaged tissue, the polymer releases the therapeutic agent based on the properties of the polymer coating. Accordingly, the effect of the coating is substantially local at the surface of the tissue making contact with the coating and the stent. In some instances, the effect of the coating is further localized to the specific locations of stent struts pressed against the tissue location being treated. These prior approaches can create the potential for a localized toxic effect. In addition, patients that received a polymer-based implant must also follow a course of long term systemic anti-platelet therapy, on a permanent basis, to offset the thrombogenic properties of the non-absorbable polymer and the inflammatory response thereto. A significant percentage of patients that receive such implants are required to undergo additional medical procedures, such as surgeries (whether related follow-up surgery or non-related surgery) and are required to stop their anti-platelet therapy. This can lead to a thrombotic event, such as stroke, which can lead to death. Use of the inventive coating described herein can negate the necessity of anti-platelet therapy, and the corresponding related risks described, because there is no thrombogenic polymer reaction to the coating.
  • Due to the lipophilic mechanism enabled by the bio-absorbable coating 20 the uptake of the therapeutic agent is facilitated by the delivery of the therapeutic agent to the cell membrane by the bio-absorbable carrier component. Further, the therapeutic agent is not freely released into the body fluids, but rather, is delivered directly to the cells and tissue. In prior configurations using polymer based coatings, the drugs were released at a rate regardless of the reaction or need for the drug on the part of the cells receiving the drug.
  • In addition, the bio-absorbable nature of the carrier component and the resulting coating results in the coating 20 being completely absorbed over time by the cells of the body tissue and body fluids. The coating breaks down into sub-parts and substances which do not induce an inflammatory response and are eventually distributed through the body and, in some instances, disposed of by the body, as is the case with biodegradable coatings. The bio-absorbable nature of coating 20 of the present invention results in the coating being absorbed, leaving only the stent structure, or other medical device structure. There is no foreign body response to the bio-absorbable carrier component.
  • Despite the action by the cells, the coating 20 of the present invention can be further configured to release the therapeutic agent component at a rate no faster than a selected controlled release rate over a period of weeks to months. The controlled release rate action is achieved by providing an increased level of vitamin E in the mixture with the fish oil, to create a more viscous, sticky coating substance that better adheres and lasts for a longer duration on the implanted medical device. The controlled release rate can include an initial burst of release, followed by the sustained multi-week to multi-month period of release. Correspondingly, with a greater amount of the bio-absorbable carrier component relative to the level of vitamin E, the controlled release rate can be increased. The fatty acids can be found in the oil, and/or fatty acids such as myristic acid or oleic acid can be added to the oil. Thus, the ratio of fatty acids to alpha-tocopherol can be varied in the preparation of the coating 20 to vary the subsequent release rate of the therapeutic agent in a controlled and predictable manner.
  • In addition, the oil provides a lubricious surface against the vessel walls. As the stent 10 having the coating 20 applied thereon is implanted within a blood vessel, for example, there can be some friction between the stent walls and the vessel walls. This can be injurious to the vessel walls, and increase injury at the diseased vessel location. The use of the naturally occurring oil, such as fish oil, provides extra lubrication to the surface of the stent 10, which reduces the initial injury. With less injury caused by the stent, there is less of an inflammatory response and less healing is required.
  • The coatings of the invention can inhibit restenosis, induced either biologically or mechanically. Biologically induced restenosis includes, but is not limited to injury attributed to infectious disorders including endotoxins and herpes viruses such as cytomegalovirus; metabolic disorders such as atherosclerosis; and vascular injury resulting from hypothermia, and irradiation. Mechanically induced restenosis includes, but is not limited to, vascular injury caused by catheterization procedures or vascular scraping procedures such as percutaneous transluminal coronary angioplasty; vascular surgery; transplantation surgery; laser treatment; and other invasive procedures which disrupt the integrity of the vessel.
  • The coatings of the invention can additionally inhibit neointimal growth. Neointimal growth refers to the migration and proliferation of vascular smooth muscle (VSM) cells with subsequent deposition of extracellular matrix components at the site of injury. Neointimal growth can occur as the result of arterial tissue injury caused by biological or mechanical origins. Injury can cause an exaggerated or excessive healing response characterized by excessive proliferation of the vascular smooth muscle cells in the neointima and subsequent secretion of extracellular matrix causing intimal hyperplasia that can often result in stenosis of the artery. While the mechanism is complex, the hyperplasia appears to result at least partly from transformation of the smooth muscle cells from a quiescent, contractile phenotype to a proliferative phenotype. If untreated the proliferation of cells and secretion of extracellular matrix can obstruct the vessel lumen.
  • The coatings of the invention can further promote endothelialization. Endothelialization refers to both any process of replacing the endothelium stripped by any biological or mechanical process and any process of growing new endothelial cells to cover an implanted medical device. The endothelialization can involve ingrowth of the proximal or distal endothelium longitudinally over the stent, from the lumen of the blood vessel into which the stent is inserted. Endothelialization via this method can result in endothelial cells lining the lumen of the stented vessel. Stents can be treated or coated with drugs or other substances which encourage endothelial growth and/or recruitment of endothelial progenitor cells for example from the blood circulation.
  • In the instance of an expanded PTFE vascular graft, covered stent or stent graft the endothelialization can involve promoting pannus ingrowth longitudinally into the device from the lumen of the blood vessel into which the stent is inserted. Endothelialization via this method can result in endothelial cells lining the lumen of the device with few if any endothelial cells in the porosity of the device. Endothelialization can also refer to “transmural” or “transinterstitial” endothelialization, which can involve promoting the ingrowth of capillaries and/or capillary endothelial cells through the device wall and into the porosity. Such endothelial cells originate in the microvasculature of adjacent tissue external to the device, and grow through the device wall, in part by virtue of its porosity. Under appropriate conditions, the endothelial cells are able to grow through the stent wall and colonize the stent lumen. Endothelialization can further refer to “capillary endothelialization”. The process of capillary endothelialization can be distinguished by its sequential cellular steps, including the initial attachment of endothelial cells to the stent material, followed by their spreading, inward migration, and optionally, proliferation. Accordingly, endothelialization can additionally refer to all of these processes. The term “endothelial cells” can refer to both mature endothelial cells and endothelial progenitor cells.
  • In accordance with one aspect of the present invention, the coatings can effect controlled delivery of the one or more therapeutic agents. The phrases “controlled release” and “delivery of the therapeutic agent is controlled” generally refers to the release of a biologically active agent in a predictable manner over the time period of several days, several weeks, or several months as desired and predetermined upon formation of the biologically active agent on the medical device from which it is being released. Controlled release includes the provision of an initial burst of release upon implantation, followed by the predictable release over the aforementioned time period.
  • Furthermore, the step of applying a coating substance to form a coating on the medical device such as the stent 10 can include a number of different application methods. For example, the stent 10 can be dipped into a liquid solution of the coating substance. The coating substance can be sprayed onto the stent 10, which results in application of the coating substance on the exterior surface 18 of the stent 10 as shown in FIG. 5. Another alternative application method is painting, using an applicator or wiping the coating substance on to the stent 10, which also results in the coating substance forming the coating 20 on the exterior surface 18 as shown in FIG. 5. One of ordinary skill in the art will appreciate that other methods, such as electrostatic adhesion and inkjet application, and other application methods, can be utilized to apply the coating substance to the medical device such as the stent 10. Some application methods may be particular to the coating substance and/or to the structure of the medical device receiving the coating. Accordingly, the present invention is not limited to the specific embodiment described herein, but is intended to apply generally to the application of the coating substance to the medical device, taking whatever precautions are necessary to make the resulting coating maintain desired characteristics.
  • FIG. 6 illustrates one method of making the present invention, in the form of the coated stent 10, in accordance with one embodiment of the present invention. The process involves providing a medical device, such as the stent 10 (step 600). A coating, such as coating 20, is then applied to the medical device (step 610). One of ordinary skill in the art will appreciate that this basic method of application of a coating to a medical device such as the stent 10 can have a number of different variations falling within the process described. Depending on the particular application, the stent 10 with the coating 20 applied thereon can be implanted after the coating 20 is applied, or additional steps such as curing and sterilization can be applied to further prepare the stent 10 and coating 20. Furthermore, if the coating 20 includes a therapeutic agent that requires some form of activation (such as UV light), such actions can be implemented accordingly.
  • FIG. 7 is a flowchart illustrating one example implementation of the method of FIG. 6. In accordance with the steps illustrated in FIG. 7, the therapeutic agent desired for delivery is identified (step 700) and the amount of said therapeutic agent is identified (step 705). A solvent based on the properties of the therapeutic agent is selected (step 710) and the solvent and the therapeutic agent are mixed to provide a first mixture (step 715). The ratio of the vitamin E compound and the bio-absorbable carrier component is determined (step 720), and are subsequently mixed to form a second mixture (step 725). The first mixture and the second mixture are then combined to form a coating for a medical device (step 730). The coating for the medical device is applied to the medical device (step 735) and the solvent is removed (step 740), or, alternatively, the solvent is removed (step 745) and the coating is applied to the medical device (step 750).
  • The coating for a medical device can be applied to the medical device (step 735 and step 750) and can take place in a manufacturing-type facility and subsequently shipped and/or stored for later use. Alternatively, the coating 20 can be applied to the stent 10 just prior to implantation in the patient. The process utilized to prepare the stent 10 will vary according to the particular embodiment desired. In the case of the coating 20 being applied in a manufacturing-type facility, the stent 10 is provided with the coating 20 and subsequently sterilized in accordance with any of the methods provided herein, and/or any equivalents. The stent 10 is then packaged in a sterile environment and shipped or stored for later use. When use of the stent 10 is desired, the stent is removed from the packaging and implanted in accordance with its specific design.
  • In the instance of the coating being applied just prior to implantation, the stent can be prepared in advance. The stent 10, for example, can be sterilized and packaged in a sterile environment for later use. When use of the stent 10 is desired, the stent 10 is removed from the packaging, and the coating substance is applied to result in the coating 20 resident on the stent 10. The coating 20 can result from application of the coating substance by, for example, the dipping, spraying, brushing, swabbing, wiping, printing, using an applicator or painting methods.
  • The coated medical device is then sterilized using any number of different sterilization processes (step 755). Sterilization can involve the use of at least one of ethylene oxide, gamma radiation, e-beam, steam, gas plasma, and vaporized hydrogen peroxide (VHP).
  • One of ordinary skill in the art will appreciate that other sterilization processes can also be applied, and that those listed herein are merely examples of sterilization processes that result in a sterilization of the coated stent, preferably without having a detrimental effect on the coating 20.
  • In accordance with another embodiment of the present invention a surface preparation or pre-treatment 22, as shown in FIG. 9, is provided on a stent 10. More specifically and in reference to the flowchart of FIG. 8, a pre-treatment substance is first provided (step 800). The pre-treatment substance is applied to a medical device, such as the stent 10, to prepare the medical device surface for application of the coating (step 810). Suitable pre-treatments include partially cured fish oil, plasma, parylene, and hydrophobic or hydrophilic polymers. If desired, the pre-treatment 22 is cured (step 820). Curing methods can include processes such as application of UV light or application of heat or curing by chemical means. A coating substance is then applied on top of the pre-treatment 22 (step 830). The coated medical device is then sterilized using any number of sterilization processes as previously mentioned (step 840).
  • FIG. 9 illustrates the stent 10 having two coatings, specifically, the pre-treatment 22 and the coating 20. The pre-treatment 22 serves as a base or primer for the coating 20. The coating 20 conforms and adheres better to the pre-treatment 22 verses directly to the stent 10, especially if the coating 20 is not heat or UV cured. The pre-treatment can be formed of a number of different materials or substances. In accordance with one example embodiment of the present invention, the pre-treatment is formed of a bio-absorbable substance, such as a naturally occurring oil (e.g., fish oil). The bio-absorbable nature of the pre-treatment 22 results in the pre-treatment 22 ultimately being absorbed by the cells of the body tissue after the coating 20 has been absorbed.
  • It has been previously mentioned that curing of substances such as fish oil can reduce or eliminate some of the therapeutic benefits of the omega-3 fatty acids, including anti-inflammatory properties and healing properties. However, if the coating 20 contains the bio-absorbable carrier component in combination with a vitamin E compound having the therapeutic benefits, the pre-treatment 22 can be cured to better adhere the pre-treatment 22 to the stent 10, without losing the therapeutic benefits resident in the subsequently applied coating 20. Furthermore, the cured pre-treatment 22 provides better adhesion for the coating 20 relative to when the coating 20 is applied directly to the stent 10 surface. In addition, the pre-treatment 22, despite being cured, remains bio-absorbable, like the coating 20. In addition, methods can be used to enhance the curing process. These methods include, for example, the addition of other reactive oils, such as linseed oil, and the application of reactive gasses, such as oxygen, fluorine, methane or propylene, plasma treatment, and pressure in the presence of reactive gasses and the like.
  • The pre-treatment 22 can be applied to both the interior surface 16 and the exterior surface 18 of the stent 10, if desired, or to one or the other of the interior surface 16 and the exterior surface 18. Furthermore, the pre-treatment 22 can be applied to only portions of the surfaces 16 and 18, or to the entire surface, if desired. In one embodiment, the pre-treatment can include a therapeutic agent.
  • Various aspects and embodiments of the present invention are further described by way of the following Examples. The Examples are offered by way of illustration and not by way of limitation.
  • EXAMPLE #1
  • A bio-absorbable carrier component in combination with a vitamin E compound was made by mixing 1.5 grams of vitamin E and 3.5 grams of fish oil to form a base coating (30% vitamin E). A sample was then prepared by first dissolving 28 mg of rapamycin in 529 mg of NMP (N-methyl-2-pyrrolidone). After the drug was fully dissolved in the solvent, 502 mg of the 30% vitamin E/70% fish oil base coat was added and the solution was vortexed until thoroughly mixed. A drop of the coating was then placed on a microscope slide and the sample was dried over night under vacuum in a bell jar. This was the maximum level of drug loading (5.3%) attainable with this formulation before crystals began to form after drying. A bio-absorbable carrier component in combination with a vitamin E compound was then made by mixing 3.5 grams of vitamin E and 1.5 grams of fish oil to form a base coating (70% vitamin E). A sample was then prepared by first dissolving 110 mg of rapamycin in 244 mg of NMP (n-Methyl-2-Pyrrolidone). After the drug was fully dissolved in the solvent, 118 mg of the 70% vitamin E/30% fish oil base coat was added and the solution was vortexed until thoroughly mixed. A drop of the coating was then placed on a microscope slide and the sample was dried over night under vacuum in a bell jar. This was the maximum level of drug loading attainable with this formulation due to solubility constraints of the solvent. Crystals did not form after drying at any percentage below this level with this formulation. The 30% vitamin E formulation has a maximum solubility of just over 5% for the rapamycin and the 70% vitamin E formulation has a maximum solubility of greater than 48%.
  • EXAMPLE #2
  • A bio-absorbable carrier component in combination with a vitamin E compound was made by mixing 3.5 grams of Vitamin E and 1.5 grams of fish oil to form a base coating (70% vitamin E/30% fish oil). A sample was then prepared by first dissolving 41 mg of melatonin in 270 mg of NMP (N-methyl-2-pyrrolidone). After the drug was fully dissolved in the solvent, 316 mg of the 70% vitamin E/30% fish oil base coat was added and the solution was vortexed until thoroughly mixed. A drop of the coating was then placed on a microscope slide and the sample was dried over night under vacuum in a bell jar. This was the maximum level of drug loading (11.5%) attainable with this formulation before crystals began to form after drying. A bio-absorbable carrier component in combination with a vitamin E compound was then made by mixing 3.5 grams of vitamin E and 1.5 grams of fish oil fatty acids (FOFA) to form a base coating (70% vitamin E/30% FOFA). A sample was then prepared by first dissolving 81.5 mg of melatonin in 120 mg of NMP (N-methyl-2-pyrrolidone). After the drug was fully dissolved in the solvent, 209 mg of the 70% vitamin E/30% FOFA base coat was added and the solution was vortexed until thoroughly mixed. A drop of the coating was then placed on a microscope slide and the sample was dried over night under vacuum in a bell jar. This was the maximum level of drug loading attainable (28%) with this formulation before crystals began to form after drying. Crystals did not form after drying at any percentage below this level with this formulation. Melatonin formulated with 70% vitamin E and 30% fish oil formulation has a maximum solubility of 11.5%. When a 70% vitamin E and 30% fish oil fatty acid formulation is used with melatonin, the maximum solubility increases to greater than 28%.
  • EXAMPLE #3
  • A bio-absorbable carrier component in combination with a vitamin E compound was made by mixing 3.5 grams of vitamin E and 1.5 grams of fish oil to form a base coating (70% vitamin E/30% fish oil). A sample was then prepared by first dissolving 8.4 mg of paclitaxel in 153 mg of ethanol. After the drug was fully dissolved in the solvent, 162.4 mg of the 70% vitamin E/30% fish oil base coat was added and the solution was vortexed until thoroughly mixed. A drop of the coating was then placed on a microscope slide and the sample was dried over night under vacuum in a bell jar. This was the maximum level of drug loading (4.9%) attainable with this formulation before crystals began to form after drying. A bio-absorbable carrier component in combination with a vitamin E compound was then made by mixing 3.5 grams of vitamin E and 1.5 grams of fish oil to form a base coating (70% vitamin E/30% fish oil). A sample was then prepared by first dissolving 8.4 mg of paclitaxel in 153 mg of NMP (N-methyl-2-pyrrolidone). After the drug was fully dissolved in the solvent, 162.4 mg of the 70% vitamin E/30% fish oil base coat was added and the solution was vortexed until thoroughly mixed. A drop of the coating was then placed on a microscope slide and the sample was dried over night under vacuum in a bell jar. This was the minimum level of drug loading (4.9%) tested with this formulation and crystals formed after drying. Loading paclitaxel at 4.9% by weight in a coating using N-methyl-2-pyrrolidone, the drug is not totally dissolved. Loading paclitaxel at 5% by weight in a coating using ethanol, the drug is completely dissolved.
  • EXAMPLE #4
  • A bio-absorbable carrier component in combination with a vitamin E compound was made by mixing 3.5 grams of vitamin E and 1.5 grams of fish oil to form a base coating (70% vitamin E/30% fish oil). A sample was then prepared by first dissolving 23.7 mg of melatonin in 213.7 mg of ethanol. After the drug was fully dissolved in the solvent, 244.8 mg of the 70% vitamin E/30% fish oil base coat was added and the solution was vortexed until thoroughly mixed. A drop of the coating was then placed on a microscope slide and the sample was dried over night under vacuum in a bell jar. At this level of drug loading (9%) there were crystals that formed in this formulation after drying. A bio-absorbable carrier component in combination with a vitamin E compound was then made by mixing 3.5 grams of vitamin E and 1.5 grams of fish oil to form a base coating (70% vitamin E/30% fish Oil). A sample was then prepared by first dissolving 43.2 mg of melatonin in 394.7 mg of NMP (N-methyl-2-pyrrolidone). After the drug was fully dissolved in the solvent, 449.2 mg of the 70% vitamin E/30% fish oil base coat was added and the solution was vortexed until thoroughly mixed. A drop of the coating was then placed on a microscope slide and the sample was dried over night under vacuum in a bell jar. This was a similar level of drug loading (9%) tested with this formulation and no crystals formed after drying. Loading melatonin at 9% by weight in a 70% vitamin E and 30% fish oil formulation using N-methyl-2-pyrrolidone, the drug is totally dissolved. Loading melatonin at 9% by weight in a 70% vitamin E and 30% fish oil using ethanol, the drug forms crystals.
  • Numerous modifications and alternative embodiments of the present invention will be apparent to those skilled in the art in view of the foregoing description. Accordingly, this description is to be construed as illustrative only and is for the purpose of teaching those skilled in the art the best mode for carrying out the present invention. Details of the structure may vary substantially without departing from the spirit of the invention, and exclusive use of all modifications that come within the scope of the appended claims is reserved. It is intended that the present invention be limited only to the extent required by the appended claims and the applicable rules of law.
  • All literature and similar material cited in this application, including, patents, patent applications, articles, books, treatises, dissertations and web pages, regardless of the format of such literature and similar materials, are expressly incorporated by reference in their entirety. In the event that one or more of the incorporated literature and similar materials differs from or contradicts this application, including defined terms, term usage, described techniques, or the like, this application controls.
  • The section headings used herein are for organizational purposes only and are not to be construed as limiting the subject matter described in any way.
  • While the present inventions have been described in conjunction with various embodiments and examples, it is not intended that the present teachings be limited to such embodiments or examples. On the contrary, the present inventions encompass various alternatives, modifications, and equivalents, as will be appreciated by those of skill in the art.
  • The claims should not be read as limited to the described order or elements unless stated to that effect. It should be understood that various changes in form and detail may be made without departing from the scope of the appended claims. Therefore, all embodiments that come within the scope and spirit of the following claims and equivalents thereto are claimed.
  • EQUIVALENTS
  • Those skilled in the art will recognize, or be able to ascertain using no more than routine experimentation, numerous equivalents to the specific procedures described herein. Such equivalents are considered to be within the scope of the present invention and are covered by the following claims. The contents of all references, patents, and patent applications cited throughout this application are hereby incorporated by reference. The appropriate components, processes, and methods of those patents, applications and other documents may be selected for the present invention and embodiments thereof.

Claims (95)

1. A method of dissolving an amount of one or more therapeutic agents in a bio-absorbable carrier component and a vitamin E compound, the method comprising the steps of:
(a) identifying said therapeutic agent and an amount thereof to be dissolved;
(b) selecting a solvent based on the identified therapeutic agent;
(c) dissolving the identified amount of the therapeutic agent in said solvent to form a first mixture;
(d) determining a ratio of the vitamin E compound and the bio-absorbable carrier component;
(e) mixing the vitamin E compound and the bio-absorbable carrier component to form a second mixture;
(f) combining the first mixture with the second mixture to form a homogeneous solution; and
(g) removing the solvent from the homogeneous solution such that the therapeutic agent remains dissolved in the bio-absorbable carrier component and the vitamin E.
2. The method of claim 1, wherein the vitamin E compound comprises one or more of alpha-tocopherol, beta-tocopherol, delta-tocopherol, gamma-tocopherol, alpha-tocotrienol, beta-tocotrienol, delta-tocotrienol, gamma-tocotrienol, alpha-tocopherol acetate, beta-tocopherol acetate, gamma-tocopherol acetate, delta-tocopherol acetate, alpha-tocotrienol acetate, beta-tocotrienol acetate, delta-tocotrienol acetate, gamma-tocotrienol acetate, alpha-tocopherol succinate, beta-tocopherol succinate, gamma-tocopherol succinate, delta-tocopherol succinate, alpha-tocotrienol succinate, beta-tocotrienol succinate, delta-tocotrienol succinate, gamma-tocotrienol succinate, vitamin E TPGS, mixed tocopherols, derivatives, analogs and pharmaceutically acceptable salts thereof.
3. The method of claim 1, wherein the bio-absorbable carrier component comprises a naturally occurring oil, fish oil fatty acids, fatty acid esters, free fatty acids or a combination thereof.
4. The method of claim 3, wherein the naturally occurring oil comprises fish oil.
5. The method of claim 1, wherein the bio-absorbable carrier component is modified from its naturally occurring state of increased viscosity in the form of a cross-linked gel.
6. The method of claim 3, wherein the fish oil fatty acids comprise one or more of arachidic acid, gadoleic acid, arachidonic acid, eicosapentaenoic acid (EPA), docosahexaenoic acid (DHA) or derivatives, analogs and pharmaceutically acceptable salts thereof.
7. The method of claim 3, wherein the free fatty acids comprise one or more of butyric acid, caproic acid, caprylic acid, capric acid, lauric acid, myristic acid, palmitic acid, palmitoleic acid, stearic acid, oleic acid, vaccenic acid, linoleic acid, alpha-linolenic acid, gamma-linolenic acid, behenic acid, erucic acid, lignoceric acid, analogs and pharmaceutically acceptable salts thereof.
8. The method of claim 1, wherein the therapeutic agent comprises an antioxidant, an anti-inflammatory, and anti-coagulant, a drug to alter lipid metabolism, an anti-proliferative, an anti-neoplastic, an anti-fibrotic, an immunosuppressive, a tissue growth stimulant, a functional protein/factor delivery agent, an anti-infective agent, an imaging agent, an anesthetic, a chemotherapeutic agent, a tissue absorption enhancer, an anti-adhesion agent, a germicide, an antiseptic, a proteoglycan, a GAG, a gene or polynucleotide naked or in association with a delivery agent, an analgesic, anti-migratory agents, pro-healing agents, ECM/protein production inhibitors, a polysaccharide (heparin), or a combination thereof.
9. The method of claim 1, wherein the therapeutic agent comprises one or more of rapamycin, melatonin, paclitaxel, cerivastatin, cilostazol, fluvastatin, lovastatin, pravastatin or derivatives, prodrugs, analogs and pharmaceutically acceptable salts thereof.
10. The method of claim 1, wherein the solvent comprises C2-C6 alkanols, 2-ethoxyethanol, ethanol, isopropanol, butanol, benzyl alcohol, ethylene glycol, propylene glycol, butanediols and isomers thereof, glycerol, pentaerythritol, sorbitol, mannitol, transcutol, dimethyl isosorbide, polyethylene glycol, polypropylene glycol, 2-pyrrolidone, 2-piperidone, 2-caprolactam, N-alkylpyrrolidone, N-methyl-2-pyrrolidone, N-hydroxyalkylpyrrolidone, N-alkylpiperidone, N-alkylcaprolactam, dimethylacetamide; ethyl acetate, methyl acetate, butyl acetate, ethylene glycol diethyl ether, ethylene glycol dimethyl ether, propylene glycol dimethyl ether, ethyl proprionate, tributylcitrate, acetyl triethylcitrate, acetyl tributyl citrate, triethylcitrate, ethyl oleate, ethyl caprylate, ethyl cutyrate, tracetin, ε-caprolactone and isomers thereof, δ-valerolactorne and isomers thereof, β-butyrolactone and isomers thereof; water, dimethylsulfoxide, benzyl benzoate, ethyl lactate, acetone, methylethyl ketone, dimethylsolfone, tetrahydrofuran, decylmethylsufoxide, N,N-diethyl-m-toulamide or 1-dodecylazacycloheptan-2-one, hexane, chloroform, dichloromethane or a combination thereof.
11. The method of claim 1, wherein the first mixture and the second mixture can be created independently and interchangeably first, second or substantially simultaneously.
12. The method of claim 1, wherein the bio-absorbable carrier component further comprises a compatibilizer, a preservative or a combination thereof.
13. The method of preparing a coating for a medical device, wherein the coating comprises an amount of one or more therapeutic agents dissolved in a bio-absorbable carrier component and a vitamin E compound, the method comprising the steps of:
(a) identifying said therapeutic agent and an amount thereof to be dissolved;
(b) selecting a solvent based on the identified therapeutic agent;
(c) dissolving the identified amount of the therapeutic agent in said solvent to form a first mixture;
(d) determining a ratio of the vitamin E compound and the bio-absorbable carrier component;
(e) mixing the vitamin E compound and the bio-absorbable carrier component to form a second mixture;
(f) combining the first mixture with the second mixture to form a homogeneous solution; and
(g) removing the solvent from the homogeneous solution such that the therapeutic agent remains dissolved in the bio-absorbable carrier component and the vitamin E.
14. The method of claim 13, wherein the vitamin E compound comprises one or more of alpha-tocopherol, beta-tocopherol, delta-tocopherol, gamma-tocopherol, alpha-tocotrienol, beta-tocotrienol, delta-tocotrienol, gamma-tocotrienol, alpha-tocopherol acetate, beta-tocopherol acetate, gamma-tocopherol acetate, delta-tocopherol acetate, alpha-tocotrienol acetate, beta-tocotrienol acetate, delta-tocotrienol acetate, gamma-tocotrienol acetate, alpha-tocopherol succinate, beta-tocopherol succinate, gamma-tocopherol succinate, delta-tocopherol succinate, alpha-tocotrienol succinate, beta-tocotrienol succinate, delta-tocotrienol succinate, gamma-tocotrienol succinate, vitamin E TPGS, mixed tocopherols, derivatives, analogs and pharmaceutically acceptable salts thereof.
15. The method of claim 13, wherein the bio-absorbable carrier component comprises a naturally occurring oil, fish oil fatty acids, fatty acid esters, free fatty acids or a combination thereof.
16. The method of claim 15, wherein the naturally occurring oil comprises fish oil.
17. The method of claim 13, wherein the bio-absorbable carrier component is modified from its naturally occurring state to one of increased viscosity in the form of a cross-linked gel.
18. The method of claim 17, wherein the modification of the bio-absorbable carrier component from its naturally occurring state to the state of increased viscosity occurs prior to the formation of the coating for the device.
19. The method of claim 15, wherein the fish oil fatty acids comprise one or more of arachidic acid, gadoleic acid, arachidonic acid, eicosapentaenoic acid (EPA), docosahexaenoic acid (DHA) or derivatives, analogs and pharmaceutically acceptable salts thereof.
20. The method of claim 15, wherein the free fatty acids comprise one or more of butyric acid, caproic acid, caprylic acid, capric acid, lauric acid, myristic acid, palmitic acid, palmitoleic acid, stearic acid, oleic acid, vaccenic acid, linoleic acid, alpha-linolenic acid, gamma-linolenic acid, behenic acid, erucic acid, lignoceric acid, analogs and pharmaceutically acceptable salts thereof.
21. The method of claim 13, wherein the therapeutic agent comprises an antioxidant, an anti-inflammatory, and anti-coagulant, a drug to alter lipid metabolism, an anti-proliferative, an anti-neoplastic, an anti-fibrotic, an immunosuppressive, a tissue growth stimulant, a functional protein/factor delivery agent, an anti-infective agent, an imaging agent, an anesthetic, a chemotherapeutic agent, a tissue absorption enhancer, an anti-adhesion agent, a germicide, an antiseptic, a proteoglycan, a GAG, a gene or polynucleotide naked or in association with a delivery agent, an analgesic, anti-migratory agents, pro-healing agents, ECM/protein production inhibitors, a polysaccharide (heparin), or a combination thereof.
22. The method of claim 13, wherein the therapeutic agent comprises one or more of rapamycin, melatonin, paclitaxel, cerivastatin, cilostazol, fluvastatin, lovastatin, pravastatin or derivatives, prodrugs, analogs and pharmaceutically acceptable salts thereof.
23. The method of claim 13, wherein the solvent comprises comprises C2-C6 alkanols, 2-ethoxyethanol, ethanol, isopropanol, butanol, benzyl alcohol, ethylene glycol, propylene glycol, butanediols and isomers thereof, glycerol, pentaerythritol, sorbitol, mannitol, transcutol, dimethyl isosorbide, polyethylene glycol, polypropylene glycol, 2-pyrrolidone, 2-piperidone, 2-caprolactam, N-alkylpyrrolidone, N-methyl-2-pyrrolidone, N-hydroxyalkylpyrrolidone, N-alkylpiperidone, N-alkylcaprolactam, dimethylacetamide; ethyl acetate, methyl acetate, butyl acetate, ethylene glycol diethyl ether, ethylene glycol dimethyl ether, propylene glycol dimethyl ether, ethyl proprionate, tributylcitrate, acetyl triethylcitrate, acetyl tributyl citrate, triethylcitrate, ethyl oleate, ethyl caprylate, ethyl cutyrate, tracetin, ε-caprolactone and isomers thereof, δ-valerolactorne and isomers thereof, β-butyrolactone and isomers thereof, water, dimethylsulfoxide, benzyl benzoate, ethyl lactate, acetone, methylethyl ketone, dimethylsolfone, tetrahydrofuran, decylmethylsufoxide, N,N-diethyl-m-toulamide or 1-dodecylazacycloheptan-2-one, hexane, chloroform, dichloromethane, or a combination thereof.
24. The method of claim 13, wherein the first mixture and the second mixture can be created independently and interchangeably first, second or substantially simultaneously.
25. The method of claim 13, wherein the bio-absorbable carrier component further comprises a compatibilizer, a preservative or a combination thereof.
26. A coating for a medical device comprising an amount of one or more therapeutic agents dissolved in a bio-absorbable carrier component and a vitamin E compound.
27. The coating of claim 26, wherein the vitamin E compound comprises one or more of alpha-tocopherol, beta-tocopherol, delta-tocopherol, gamma-tocopherol, alpha-tocotrienol, beta-tocotrienol, delta-tocotrienol, gamma-tocotrienol, alpha-tocopherol acetate, beta-tocopherol acetate, gamma-tocopherol acetate, delta-tocopherol acetate, alpha-tocotrienol acetate, beta-tocotrienol acetate, delta-tocotrienol acetate, gamma-tocotrienol acetate, alpha-tocopherol succinate, beta-tocopherol succinate, gamma-tocopherol succinate, delta-tocopherol succinate, alpha-tocotrienol succinate, beta-tocotrienol succinate, delta-tocotrienol succinate, gamma-tocotrienol succinate, vitamin E TPGS, mixed tocopherols, derivatives, analogs and pharmaceutically acceptable salts thereof.
28. The coating of claim 26, wherein the bio-absorbable carrier component comprises a naturally occurring oil, fish oil fatty acids, fatty acid esters, free fatty acids or a combination thereof.
29. The coating of claim 28, wherein the naturally occurring oil comprises fish oil.
30. The coating of claim 26, wherein the bio-absorbable carrier component is modified from its naturally occurring state to one of increased viscosity in the form of a cross-linked gel.
31. The coating of claim 30, wherein the modification of the bio-absorbable carrier component from its naturally occurring state to the state of increased viscosity occurs prior to the formation of the coating for the device.
32. The coating of claim 28, wherein the fish oil fatty acids comprise one or more of arachidic acid, gadoleic acid, arachidonic acid, eicosapentaenoic acid (EPA), docosahexaenoic acid (DHA) or derivatives, analogs and pharmaceutically acceptable salts thereof.
33. The coating of claim 28, wherein the free fatty acids comprise one or more of butyric acid, caproic acid, caprylic acid, capric acid, lauric acid, myristic acid, palmitic acid, palmitoleic acid, stearic acid, oleic acid, vaccenic acid, linoleic acid, alpha-linolenic acid, gamma-linolenic acid, behenic acid, erucic acid, lignoceric acid, analogs and pharmaceutically acceptable salts thereof.
34. The coating of claim 26, wherein the therapeutic agent comprises one or more of an antioxidant, an anti-inflammatory, and anti-coagulant, a drug to alter lipid metabolism, an anti-proliferative, an anti-neoplastic, an anti-fibrotic, an immunosuppressive, a tissue growth stimulant, a functional protein/factor delivery agent, an anti-infective agent, an imaging agent, an anesthetic, a chemotherapeutic agent, a tissue absorption enhancer, an anti-adhesion agent, a germicide, an antiseptic, a proteoglycan, a GAG, a gene or polynucleotide naked or in association with a delivery agent, an analgesic, anti-migratory agents, pro-healing agents, ECM/protein production inhibitors, a polysaccharide (heparin), or derivatives, prodrugs, analogs and pharmaceutically acceptable salts thereof.
35. The coating of claim 26, wherein the therapeutic agent comprises one or more of rapamycin, melatonin, paclitaxel, cerivastatin, cilostazol, fluvastatin, lovastatin, pravastatin or derivatives, prodrugs, analogs and pharmaceutically acceptable salts thereof.
36. The coating of claim 26, wherein the coating further comprises a compatibilizer, a preservative or a combination thereof.
37. The coating of claim 26, wherein the vitamin E compound and the bio-absorbable carrier component are present in about 70% of the vitamin E compound and about 30% of the bio-absorbable carrier component.
38. The coating of claim 37, wherein the bio-absorbable carrier component comprises fish oil.
39. The coating of claim 37, wherein the bio-absorbable carrier component is modified from its naturally occurring state to one of increased viscosity in the form of a cross-linked gel.
40. The coating of claim 26, wherein the vitamin E compound and the bio-absorbable carrier component are present in about 50% of the vitamin E compound and about 50% of bio-absorbable carrier component.
41. The coating of claim 40, wherein the bio-absorbable carrier component comprises fish oil in combination with a free fatty acid.
42. The coating of claim 41, wherein the free fatty acid is oleic acid.
43. The coating of claim 26, wherein the coating is non-polymeric.
44. The coating of claim 26, wherein the coating inhibits restenosis.
45. The coating of claim 26, wherein the coating inhibits neointimal growth.
46. The coating of claim 26, wherein the coating promotes endothelialization.
47. A method of making a coated medical device comprising the steps of:
providing the medical device; and
coating the medical device;
wherein the coating comprises an amount of one or more therapeutic agents dissolved in a solvent, a bio-absorbable carrier component and a vitamin E compound such that the coated medical device is implantable in a subject to effect delivery of the one or more therapeutic agents to a subject.
48. The method of claim 47, wherein the coating further comprises a compatibilizer, a preservative or a combination thereof.
49. The method of claim 47, wherein the vitamin E compound comprises one or more of alpha-tocopherol, beta-tocopherol, delta-tocopherol, gamma-tocopherol, alpha-tocotrienol, beta-tocotrienol, delta-tocotrienol, gamma-tocotrienol, alpha-tocopherol acetate, beta-tocopherol acetate, gamma-tocopherol acetate, delta-tocopherol acetate, alpha-tocotrienol acetate, beta-tocotrienol acetate, delta-tocotrienol acetate, gamma-tocotrienol acetate, alpha-tocopherol succinate, beta-tocopherol succinate, gamma-tocopherol succinate, delta-tocopherol succinate, alpha-tocotrienol succinate, beta-tocotrienol succinate, delta-tocotrienol succinate, gamma-tocotrienol succinate, vitamin E TPGS, mixed tocopherols, derivatives, analogs and pharmaceutically acceptable salts thereof.
50. The method of claim 47, wherein the bio-absorbable carrier component comprises a naturally occurring oil, fish oil fatty acids, fatty acid esters, free fatty acids or a combination thereof.
51. The method of claim 50, wherein the naturally occurring oil comprises fish oil.
52. The method of claim 47, wherein the bio-absorbable carrier component is modified from its naturally occurring state to one of increased viscosity in the form of a cross-linked gel.
53. The method of claim 52, wherein the modification of the bio-absorbable carrier component from its naturally occurring state to the state of increased viscosity occurs prior to the formation of the coating for the device.
54. The method of claim 50, wherein the fish oil fatty acids comprise one or more of arachidic acid, gadoleic acid, arachidonic acid, eicosapentaenoic acid (EPA), docosahexaenoic acid (DHA) or derivatives, analogs and pharmaceutically acceptable salts thereof.
55. The method of claim 50, wherein the free fatty acids comprise one or more of butyric acid, caproic acid, caprylic acid, capric acid, lauric acid, myristic acid, palmitic acid, palmitoleic acid, stearic acid, oleic acid, vaccenic acid, linoleic acid, alpha-linolenic acid, gamma-linolenic acid, behenic acid, erucic acid, lignoceric acid, analogs and pharmaceutically acceptable salts thereof.
56. The method of claim 47, wherein the therapeutic agent comprises one or more of an antioxidant, an anti-inflammatory, and anti-coagulant, a drug to alter lipid metabolism, an anti-proliferative, an anti-neoplastic, an anti-fibrotic, an immunosuppressive, a tissue growth stimulant, a functional protein/factor delivery agent, an anti-infective agent, an imaging agent, an anesthetic, a chemotherapeutic agent, a tissue absorption enhancer, an anti-adhesion agent, a germicide, an antiseptic, a proteoglycan, a GAG, a gene or polynucleotide naked or in association with a delivery agent, an analgesic, anti-migratory agents, pro-healing agents, ECM/protein production inhibitors, a polysaccharide (heparin), or derivatives, prodrugs, analogs and pharmaceutically acceptable salts thereof.
57. The method of claim 47, wherein the therapeutic agent comprises one or more of rapamycin, melatonin, paclitaxel, cerivastatin, cilostazol, fluvastatin, lovastatin, pravastatin or derivatives, prodrugs, analogs and pharmaceutically acceptable salts thereof.
58. The method of claim 47, wherein the solvent comprises C2-C6 alkanols, 2-ethoxyethanol, ethanol, isopropanol, butanol, benzyl alcohol, ethylene glycol, propylene glycol, butanediols and isomers thereof, glycerol, pentaerythritol, sorbitol, mannitol, transcutol, dimethyl isosorbide, polyethylene glycol, polypropylene glycol, 2-pyrrolidone, 2-piperidone, 2-caprolactam, N-alkylpyrrolidone, N-methyl-2-pyrrolidone, N-hydroxyalkylpyrrolidone, N-alkylpiperidone, N-alkylcaprolactam, dimethylacetamide; ethyl acetate, methyl acetate, butyl acetate, ethylene glycol diethyl ether, ethylene glycol dimethyl ether, propylene glycol dimethyl ether, ethyl proprionate, tributylcitrate, acetyl triethylcitrate, acetyl tributyl citrate, triethylcitrate, ethyl oleate, ethyl caprylate, ethyl cutyrate, tracetin, ε-caprolactone and isomers thereof, δ-valerolactorne and isomers thereof, β-butyrolactone and isomers thereof; water, dimethylsulfoxide, benzyl benzoate, ethyl lactate, acetone, methylethyl ketone, dimethylsolfone, tetrahydrofuran, decylmethylsufoxide, N,N-diethyl-m-toulamide or 1-dodecylazacycloheptan-2-one, hexane, chloroform, dichloromethane, or a combination thereof.
59. The method of claim 47, wherein the coating inhibits restenosis.
60. The method of claim 47, wherein the coating inhibits neointimal growth.
61. The method of claim 47, wherein the coating promotes endothelialization.
62. The method of claim 47, wherein the coating is non-polymeric.
63. The method of claim 47, wherein the medical device comprises a stent.
64. The method of claim 63, wherein the stent is formed of a substance selected from the group consisting of stainless steel, Nitinol alloy, nickel alloy, titanium alloy, cobalt-chromium alloy, tantalum, magnesium, ceramics, metals, plastics and polymers.
65. The method of claim 47, further comprising providing a pre-treatment between the medical device and the coating, wherein the pre-treatment improves consistency and conformability and enhances the adhesion of the coating.
66. The method of claim 65, wherein the pre-treatment is bio-absorbable.
67. The method of claim 65, wherein the pre-treatment comprises at least one of a bio-absorbable carrier component.
68. The method of claim 67, wherein the pre-treatment comprises fish oil.
69. The method of claim 65, wherein the pre-treatment comprises a therapeutic agent.
70. The method of claim 67, wherein the pre-treatment is modified from its naturally occurring state to one of increased viscosity in the form of a cross-linked gel.
71. The method of claim 47, further comprising preparing the coating prior to application to the medical device, the method comprising the steps of:
(a) identifying said therapeutic agent and an amount thereof to be dissolved;
(b) selecting a solvent based on the identified therapeutic agent;
(c) dissolving the identified amount of the therapeutic agent in said solvent to form a first mixture;
(d) determining a ratio of the vitamin E compound and the bio-absorbable carrier component;
(e) mixing the vitamin E compound and the bio-absorbable carrier component to form a second mixture; and
(f) combining the first mixture with the second mixture to form a homogeneous solution.
72. The method of claim 71, further comprising the step of removing the solvent after applying the coating to the medical device.
73. The method of claim 71, wherein the first mixture and the second mixture can be created independently and interchangeably first, second, or substantially simultaneously.
74. The method of claim 47, wherein applying the coating comprises at least one of dipping the medical device in the coating, spraying the coating on the medical device, painting the coating on the medical device, wiping the coating on the medical device, printing the coating on the device, applying the coating with an applicator and electrostatically applying the coating to the medical device.
75. The method of claim 47, further comprising curing the coating on the medical device.
76. The method of claim 74, wherein curing comprises applying at least one of heat, UV light, a reactive oil, a reactive gas, a plasma treatment, or pressure in combination with a reactive gas.
77. The method of claim 47, further comprising sterilizing the coating and the medical device.
78. The method of claim 77, wherein sterilizing comprises sterilizing using at least one of ethylene oxide, gamma radiation, e-beam, steam, gas plasma, and vaporized hydrogen peroxide (VHP).
79. A coated medical device comprising:
a coating having an amount of one or more therapeutic agents, a bio-compatible carrier component and a vitamin E compound such that the medical device is implantable in a subject to effect delivery of the one or more therapeutic agents to said subject.
80. The device of claim 79, wherein the coating further comprises a compatibilizer, a preservative or a combination thereof.
81. The device of claim 79, wherein the vitamin E compound comprises one or more of alpha-tocopherol, beta-tocopherol, delta-tocopherol, gamma-tocopherol, alpha-tocotrienol, beta-tocotrienol, delta-tocotrienol, gamma-tocotrienol, alpha-tocopherol acetate, beta-tocopherol acetate, gamma-tocopherol acetate, delta-tocopherol acetate, alpha-tocotrienol acetate, beta-tocotrienol acetate, delta-tocotrienol acetate, gamma-tocotrienol acetate, alpha-tocopherol succinate, beta-tocopherol succinate, gamma-tocopherol succinate, delta-tocopherol succinate, alpha-tocotrienol succinate, beta-tocotrienol succinate, delta-tocotrienol succinate, gamma-tocotrienol succinate, vitamin E TGPS, mixed tocopherols, derivatives, analogs and pharmaceutically acceptable salts thereof.
82. The device of claim 79, wherein the bio-absorbable carrier component comprises a naturally occurring oil, fish oil fatty acids, fatty acid esters, free fatty acids or a combination thereof.
83. The device of claim 82, wherein the naturally occurring oil comprises fish oil.
84. The device of claim 79, wherein the bio-absorbable carrier component is modified from its naturally occurring state to one of increased viscosity in the form of a cross-linked gel.
85. The device of claim 84, wherein the modification of the bio-absorbable carrier component from its naturally occurring state to the state of increased viscosity occurs prior to the formation of the coating for the device.
86. The device of claim 82, wherein the fish oil fatty acids comprise one or more of arachidic acid, gadoleic acid, arachidonic acid, eicosapentaenoic acid (EPA), docosahexaenoic acid (DHA) or derivatives, analogs and pharmaceutically acceptable salts thereof.
87. The device of claim 82, wherein the free fatty acids comprise one or more of butyric acid, caproic acid, caprylic acid, capric acid, lauric acid, myristic acid, palmitic acid, palmitoleic acid, stearic acid, oleic acid, vaccenic acid, linoleic acid, alpha-linolenic acid, gamma-linolenic acid, behenic acid, erucic acid, lignoceric acid, analogs and pharmaceutically acceptable salts thereof.
88. The device of claim 79, wherein the therapeutic agent comprises one or more of an antioxidant, an anti-inflammatory, and anti-coagulant, a drug to alter lipid metabolism, an anti-proliferative, an anti-neoplastic, an anti-fibrotic, an immunosuppressive, a tissue growth stimulant, a functional protein/factor delivery agent, an anti-infective agent, an imaging agent, an anesthetic, a chemotherapeutic agent, a tissue absorption enhancer, an anti-adhesion agent, a germicide, an antiseptic, a proteoglycan, a GAG, a gene or polynucleotide naked or in association with a delivery agent, an analgesic, anti-migratory agents, pro-healing agents, ECM/protein production inhibitors, a polysaccharide (heparin), or derivatives, prodrugs, analogs and pharmaceutically acceptable salts thereof.
89. The device of claim 79, wherein the therapeutic agent comprises one or more of rapamycin, melatonin, paclitaxel, cerivastatin, cilostazol, fluvastatin, lovastatin, pravastatin or derivatives, prodrugs, analogs and pharmaceutically acceptable salts thereof.
90. The device of claim 79, wherein the coating inhibits restenosis.
91. The device of claim 79, wherein the coating is non-polymeric.
92. The device of claim 79, wherein the coating inhibits neo-intimal growth.
93. The device of claim 79, wherein the coating promotes endothelialization.
94. The device of claim 79, wherein the medical device comprises a stent.
95. The device of claim 94, wherein the stent is formed of a substance selected from the group consisting of stainless steel, Nitinol alloy, nickel alloy, titanium alloy, cobalt-chromium alloy, tantalum, magnesium, ceramics, metals, plastics and polymers.
US11/236,977 2004-09-28 2005-09-28 Solubilizing a drug for use in a coating Abandoned US20060088596A1 (en)

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US11/238,554 Expired - Fee Related US8001922B2 (en) 2004-09-28 2005-09-28 Application of a coating on a medical device
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Cited By (37)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20060067983A1 (en) * 2004-09-28 2006-03-30 Atrium Medical Corporation Stand-alone film and methods for making the same
US20070071798A1 (en) * 2004-09-28 2007-03-29 Atrium Medical Corporation Perforated bioabsorbable oil film and methods for making the same
US20070202149A1 (en) * 2005-10-15 2007-08-30 Atrium Medical Corporation Hydrophobic cross-linked gels for bioabsorbable drug carrier coatings
US20080109017A1 (en) * 2006-11-06 2008-05-08 Atrium Medical Corporation Barrier layer with underlying medical device and one or more reinforcing support structures
US20080113001A1 (en) * 2006-11-06 2008-05-15 Atrium Medical Corporation Tissue separating device with reinforced support for anchoring mechanisms
US20080181928A1 (en) * 2006-12-22 2008-07-31 Miv Therapeutics, Inc. Coatings for implantable medical devices for liposome delivery
US20080207756A1 (en) * 2007-02-27 2008-08-28 Atrium Medical Corporation Bio-absorbable oil suspension
US20090011116A1 (en) * 2004-09-28 2009-01-08 Atrium Medical Corporation Reducing template with coating receptacle containing a medical device to be coated
US20090047414A1 (en) * 2004-09-28 2009-02-19 Atrium Medical Corporation Method and apparatus for application of a fresh coating on a medical device
US20090099651A1 (en) * 2007-10-10 2009-04-16 Miv Therapeutics, Inc. Lipid coatings for implantable medical devices
US20090137617A1 (en) * 2007-11-23 2009-05-28 Andrew Levy Use of haptoglobin genotyping in diagnosis and treatment of cardiovascular disease
US20090208552A1 (en) * 2004-09-28 2009-08-20 Atrium Medical Corporation Cross-linked fatty acid-based biomaterials
WO2009144313A2 (en) * 2008-05-29 2009-12-03 Numat Biomedical S.L. Pufa covered implants
US20100233232A1 (en) * 2009-03-10 2010-09-16 Swanick Thomas M Fatty-acid based particles
US20110015664A1 (en) * 2009-07-17 2011-01-20 Boston Scientific Scimed, Inc. Nucleation of Drug Delivery Balloons to Provide Improved Crystal Size and Density
US20110045050A1 (en) * 2009-08-24 2011-02-24 Atrium Medical Corporation Nanoemulsion formulations for direct delivery
US20110160645A1 (en) * 2009-12-31 2011-06-30 Boston Scientific Scimed, Inc. Cryo Activated Drug Delivery and Cutting Balloons
US20110196340A1 (en) * 1997-08-13 2011-08-11 Boston Scientific Scimed, Inc. Loading and release of water-insoluble drugs
US8263102B2 (en) 2004-09-28 2012-09-11 Atrium Medical Corporation Drug delivery coating for use with a stent
US8597720B2 (en) 2007-01-21 2013-12-03 Hemoteq Ag Medical product for treating stenosis of body passages and for preventing threatening restenosis
US8669360B2 (en) 2011-08-05 2014-03-11 Boston Scientific Scimed, Inc. Methods of converting amorphous drug substance into crystalline form
US8889211B2 (en) 2010-09-02 2014-11-18 Boston Scientific Scimed, Inc. Coating process for drug delivery balloons using heat-induced rewrap memory
US20150032201A1 (en) * 2013-07-26 2015-01-29 Medizinische Universität Graz Bio-absorbable composite materials containing magnesium and magnesium alloys as well as implants made of said composites
US9012506B2 (en) 2004-09-28 2015-04-21 Atrium Medical Corporation Cross-linked fatty acid-based biomaterials
US9050309B2 (en) 2012-01-06 2015-06-09 Omthera Pharmaceuticals, Inc. DPA-enriched compositions of omega-3 polyunsaturated fatty acids in free acid form
US9056152B2 (en) 2011-08-25 2015-06-16 Boston Scientific Scimed, Inc. Medical device with crystalline drug coating
US9192697B2 (en) 2007-07-03 2015-11-24 Hemoteq Ag Balloon catheter for treating stenosis of body passages and for preventing threatening restenosis
US9278161B2 (en) 2005-09-28 2016-03-08 Atrium Medical Corporation Tissue-separating fatty acid adhesion barrier
US9492545B2 (en) 2012-05-07 2016-11-15 Omthera Pharmaceuticals Inc. Compositions of statins and omega-3 fatty acids
US9801982B2 (en) 2004-09-28 2017-10-31 Atrium Medical Corporation Implantable barrier device
US9867880B2 (en) 2012-06-13 2018-01-16 Atrium Medical Corporation Cured oil-hydrogel biomaterial compositions for controlled drug delivery
US10322213B2 (en) 2010-07-16 2019-06-18 Atrium Medical Corporation Compositions and methods for altering the rate of hydrolysis of cured oil-based materials
US10369256B2 (en) 2009-07-10 2019-08-06 Boston Scientific Scimed, Inc. Use of nanocrystals for drug delivery from a balloon
US10450534B2 (en) 2016-07-19 2019-10-22 Ecolab Usa Inc. Methods and cleaning solutions for removing chewing gum and other sticky food substances
US10864304B2 (en) 2009-08-11 2020-12-15 Atrium Medical Corporation Anti-infective antimicrobial-containing biomaterials
US10905786B2 (en) 2017-03-27 2021-02-02 Regeneron Pharmaceuticals, Inc. Sterilisation method
CN113648457A (en) * 2021-07-27 2021-11-16 南方科技大学 Medical titanium implant, preparation method thereof and application of medical titanium implant

Families Citing this family (106)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US8021331B2 (en) * 2003-09-15 2011-09-20 Atrium Medical Corporation Method of coating a folded medical device
US7349971B2 (en) * 2004-02-05 2008-03-25 Scenera Technologies, Llc System for transmitting data utilizing multiple communication applications simultaneously in response to user request without specifying recipient's communication information
US20060058737A1 (en) * 2004-09-16 2006-03-16 Herweck Steve A Catheter treatment stylet
US20060222627A1 (en) * 2005-03-30 2006-10-05 Andrew Carter Optimizing pharmacodynamics of therapeutic agents for treating vascular tissue
WO2006119130A2 (en) * 2005-04-29 2006-11-09 Atrium Medical Corporation Drug delivery coating for use with a medical device and methods of treating vascular injury
AU2006270221B2 (en) 2005-07-15 2012-01-19 Micell Technologies, Inc. Polymer coatings containing drug powder of controlled morphology
WO2007011708A2 (en) 2005-07-15 2007-01-25 Micell Technologies, Inc. Stent with polymer coating containing amorphous rapamycin
US8784860B2 (en) * 2005-10-27 2014-07-22 Cordis Corporation Local administration of a combination of rapamycin and cilostazol for the treatment of vascular disease
WO2007127363A2 (en) 2006-04-26 2007-11-08 Micell Technologies, Inc. Coatings containing multiple drugs
US20070260300A1 (en) * 2006-05-04 2007-11-08 Daniel Gregorich Intraluminal medical device having a curable coating
WO2007131802A1 (en) * 2006-05-17 2007-11-22 Ziscoat Nv Fatty acid triglycerides for making biocompatible coatings
US20080097620A1 (en) * 2006-05-26 2008-04-24 Nanyang Technological University Implantable article, method of forming same and method for reducing thrombogenicity
US20070292305A1 (en) * 2006-06-09 2007-12-20 Sinead Dempsey Sterilization of medical devices
PL2386322T3 (en) * 2006-07-03 2018-06-29 Hemoteq Ag Production, method and use of medical products which release agents for opening blood vessels on a permanent basis
US9814557B2 (en) 2006-10-10 2017-11-14 Boston Scientific Scimed, Inc. Stent protector design
US8414910B2 (en) 2006-11-20 2013-04-09 Lutonix, Inc. Drug releasing coatings for medical devices
US8425459B2 (en) 2006-11-20 2013-04-23 Lutonix, Inc. Medical device rapid drug releasing coatings comprising a therapeutic agent and a contrast agent
US8998846B2 (en) 2006-11-20 2015-04-07 Lutonix, Inc. Drug releasing coatings for balloon catheters
US9737640B2 (en) 2006-11-20 2017-08-22 Lutonix, Inc. Drug releasing coatings for medical devices
US20080276935A1 (en) 2006-11-20 2008-11-13 Lixiao Wang Treatment of asthma and chronic obstructive pulmonary disease with anti-proliferate and anti-inflammatory drugs
US8414526B2 (en) * 2006-11-20 2013-04-09 Lutonix, Inc. Medical device rapid drug releasing coatings comprising oils, fatty acids, and/or lipids
US8430055B2 (en) * 2008-08-29 2013-04-30 Lutonix, Inc. Methods and apparatuses for coating balloon catheters
US20080175887A1 (en) * 2006-11-20 2008-07-24 Lixiao Wang Treatment of Asthma and Chronic Obstructive Pulmonary Disease With Anti-proliferate and Anti-inflammatory Drugs
US9700704B2 (en) 2006-11-20 2017-07-11 Lutonix, Inc. Drug releasing coatings for balloon catheters
US8414525B2 (en) * 2006-11-20 2013-04-09 Lutonix, Inc. Drug releasing coatings for medical devices
US11426494B2 (en) 2007-01-08 2022-08-30 MT Acquisition Holdings LLC Stents having biodegradable layers
JP5603598B2 (en) 2007-01-08 2014-10-08 ミセル テクノロジーズ、インコーポレイテッド Stent with biodegradable layer
US7938286B2 (en) * 2007-02-13 2011-05-10 Gateway Plastics, Inc. Container system
US8119151B2 (en) * 2007-04-20 2012-02-21 Boston Scientific Scimed, Inc. Spread coating a medical device
US7959857B2 (en) * 2007-06-01 2011-06-14 Abbott Cardiovascular Systems Inc. Radiation sterilization of medical devices
JP2008305262A (en) * 2007-06-08 2008-12-18 Konica Minolta Business Technologies Inc Printer introduction method in server and thin client environment
US8133553B2 (en) 2007-06-18 2012-03-13 Zimmer, Inc. Process for forming a ceramic layer
US8309521B2 (en) 2007-06-19 2012-11-13 Zimmer, Inc. Spacer with a coating thereon for use with an implant device
DE102007032686A1 (en) * 2007-07-13 2009-01-15 Biotronik Vi Patent Ag Stent with a coating
WO2009018325A1 (en) * 2007-07-30 2009-02-05 Atrium Medical Corporation Method and apparatus for application of a fresh coating on a medical device
WO2009041691A1 (en) * 2007-09-28 2009-04-02 Terumo Kabushiki Kaisha In-vivo indwelling matter
US8608049B2 (en) 2007-10-10 2013-12-17 Zimmer, Inc. Method for bonding a tantalum structure to a cobalt-alloy substrate
US20090099531A1 (en) * 2007-10-15 2009-04-16 Griesbach Iii Henry Louis Packaging for selectivity lubricating part of a medical device
SG192523A1 (en) 2008-04-17 2013-08-30 Micell Technologies Inc Stents having bioabsorbable layers
DE102008020415A1 (en) 2008-04-24 2009-10-29 Biotronik Vi Patent Ag Biodegradable metallic stents with wax layer
GR1006552B (en) * 2008-04-24 2009-10-02 Νικολαος Χρηστου Δημοφιλος Endoprostatic srping (stent) impregnated with rapamycin/sirolimus and shiga toxin acting against cancer of prostate and benign hyperplasias of the urologic tract
EP2285443B1 (en) 2008-05-01 2016-11-23 Bayer Intellectual Property GmbH Catheter balloon drug adherence techniques and methods
DE102008026207B4 (en) * 2008-05-30 2015-01-15 Manouchehr Abdolali Coating agent for coating a surface of a medical implant
US8206636B2 (en) 2008-06-20 2012-06-26 Amaranth Medical Pte. Stent fabrication via tubular casting processes
US8206635B2 (en) 2008-06-20 2012-06-26 Amaranth Medical Pte. Stent fabrication via tubular casting processes
US10898620B2 (en) 2008-06-20 2021-01-26 Razmodics Llc Composite stent having multi-axial flexibility and method of manufacture thereof
US20100135949A1 (en) * 2008-12-01 2010-06-03 Becton, Dickinson And Company Antimicrobial compositions
EP2381963A4 (en) * 2009-01-21 2014-07-02 Meril Life Sciences Private Ltd A medical device loaded with formulations for targeted delivery of biologically active material/s and method of manufacture thereof
CA2757276C (en) 2009-04-01 2017-06-06 Micell Technologies, Inc. Coated stents
US8821455B2 (en) 2009-07-09 2014-09-02 Becton, Dickinson And Company Antimicrobial coating for dermally invasive devices
EP2453834A4 (en) 2009-07-16 2014-04-16 Micell Technologies Inc Drug delivery medical device
EP2475309A4 (en) 2009-09-08 2015-07-29 Atrium Medical Corp Hernia patch
EP2531140B1 (en) 2010-02-02 2017-11-01 Micell Technologies, Inc. Stent and stent delivery system with improved deliverability
US8758799B2 (en) 2010-03-24 2014-06-24 Covidien Lp Therapeutic implant
US8758798B2 (en) 2010-03-24 2014-06-24 Covidien Lp Therapeutic implant
US8758800B2 (en) 2010-03-24 2014-06-24 Covidien Lp Therapeutic implant
CA2797110C (en) 2010-04-22 2020-07-21 Micell Technologies, Inc. Stents and other devices having extracellular matrix coating
DE102010022588A1 (en) * 2010-05-27 2011-12-01 Hemoteq Ag Balloon catheter with a particle-free drug-releasing coating
KR20130086518A (en) * 2010-05-27 2013-08-02 헤모텍 아게 Coating of endoprostheses with a coating consisting of a tight mesh of polymer fibers
US9211175B2 (en) 2010-07-08 2015-12-15 Covidien Lp Self-detachable medical devices
FR2962646B1 (en) 2010-07-16 2012-06-22 Sofradim Production PROSTHETIC WITH RADIO OPAQUE ELEMENT
WO2012009684A2 (en) 2010-07-16 2012-01-19 Micell Technologies, Inc. Drug delivery medical device
US9572907B2 (en) 2010-10-01 2017-02-21 Covidien Lp Implantable polymeric films
US8632839B2 (en) 2010-10-19 2014-01-21 Covidien Lp Methods of forming self-supporting films for delivery of therapeutic agents
US8920867B2 (en) 2010-10-19 2014-12-30 Covidien Lp Methods of forming self-supporting films for delivery of therapeutic agents
US9861590B2 (en) 2010-10-19 2018-01-09 Covidien Lp Self-supporting films for delivery of therapeutic agents
US9144634B2 (en) 2011-01-14 2015-09-29 Covidien Lp Medical device with intrapore films
US8986608B2 (en) 2011-05-17 2015-03-24 Abbott Cardiovascular Systems Inc. Method for radiation sterilization of medical devices
FR2977790B1 (en) 2011-07-13 2013-07-19 Sofradim Production PROSTHETIC FOR UMBILIC HERNIA
US8579924B2 (en) 2011-07-26 2013-11-12 Covidien Lp Implantable devices including a mesh and a pivotable film
US9782957B2 (en) 2011-08-24 2017-10-10 Covidien Lp Medical device films
US10188772B2 (en) 2011-10-18 2019-01-29 Micell Technologies, Inc. Drug delivery medical device
US9005308B2 (en) 2011-10-25 2015-04-14 Covidien Lp Implantable film/mesh composite for passage of tissue therebetween
US8932621B2 (en) 2011-10-25 2015-01-13 Covidien Lp Implantable film/mesh composite
US9179994B2 (en) 2011-10-25 2015-11-10 Covidien Lp Implantable film/mesh composite
US20150134047A1 (en) * 2011-11-07 2015-05-14 Micell Technologies, Inc. Safe drug eluting stent with absorbable coating
US10206769B2 (en) 2012-03-30 2019-02-19 Covidien Lp Implantable devices including a film providing folding characteristics
US9352119B2 (en) 2012-05-15 2016-05-31 Becton, Dickinson And Company Blood control IV catheter with antimicrobial properties
FR2992662B1 (en) 2012-06-28 2014-08-08 Sofradim Production KNIT WITH PICOTS
FR2992547B1 (en) 2012-06-29 2015-04-24 Sofradim Production PROSTHETIC FOR HERNIA
US9579486B2 (en) 2012-08-22 2017-02-28 Becton, Dickinson And Company Blood control IV catheter with antimicrobial properties
EP2911711A4 (en) 2012-10-26 2016-05-25 Urotronic Inc Drug coated balloon catheters for nonvascular strictures
US10881839B2 (en) 2012-10-26 2021-01-05 Urotronic, Inc. Drug-coated balloon catheters for body lumens
US11504450B2 (en) 2012-10-26 2022-11-22 Urotronic, Inc. Drug-coated balloon catheters for body lumens
US10850076B2 (en) 2012-10-26 2020-12-01 Urotronic, Inc. Balloon catheters for body lumens
US10898700B2 (en) 2012-10-26 2021-01-26 Urotronic, Inc. Balloon catheters for body lumens
US11938287B2 (en) 2012-10-26 2024-03-26 Urotronic, Inc. Drug-coated balloon catheters for body lumens
US10806830B2 (en) 2012-10-26 2020-10-20 Urotronic, Inc. Drug-coated balloon catheters for body lumens
US9750928B2 (en) 2013-02-13 2017-09-05 Becton, Dickinson And Company Blood control IV catheter with stationary septum activator
US9695323B2 (en) 2013-02-13 2017-07-04 Becton, Dickinson And Company UV curable solventless antimicrobial compositions
US20140249618A1 (en) * 2013-02-18 2014-09-04 Elutin, Inc. Site specific drug delivery wraps, systems and methods of use thereof
US9750927B2 (en) 2013-03-11 2017-09-05 Becton, Dickinson And Company Blood control catheter with antimicrobial needle lube
US9327095B2 (en) 2013-03-11 2016-05-03 Becton, Dickinson And Company Blood control catheter with antimicrobial needle lube
EP2996629B1 (en) 2013-05-15 2021-09-22 Micell Technologies, Inc. Bioabsorbable biomedical implants
US11839698B2 (en) 2014-03-13 2023-12-12 W. L. Gore & Associates, Inc. Drug composition and coating
US9675793B2 (en) 2014-04-23 2017-06-13 Becton, Dickinson And Company Catheter tubing with extraluminal antimicrobial coating
US9789279B2 (en) 2014-04-23 2017-10-17 Becton, Dickinson And Company Antimicrobial obturator for use with vascular access devices
US10376686B2 (en) 2014-04-23 2019-08-13 Becton, Dickinson And Company Antimicrobial caps for medical connectors
US10272158B2 (en) * 2014-07-03 2019-04-30 Board Of Regents, The University Of Texas System Compounds for treating biofilm infection
US10232088B2 (en) 2014-07-08 2019-03-19 Becton, Dickinson And Company Antimicrobial coating forming kink resistant feature on a vascular access device
CN107635593A (en) 2015-04-24 2018-01-26 优敦力公司 The foley's tube of the coated with drug narrow for non-vascular
US11904072B2 (en) 2015-04-24 2024-02-20 Urotronic, Inc. Drug coated balloon catheters for nonvascular strictures
US10561766B2 (en) 2015-09-15 2020-02-18 W. L. Gore & Associates, Inc. Drug composition and coating
US10493244B2 (en) 2015-10-28 2019-12-03 Becton, Dickinson And Company Extension tubing strain relief
US20170340899A1 (en) * 2016-05-25 2017-11-30 Boston Scientific Scimed, Inc. Radioactive stent
WO2020219894A1 (en) * 2019-04-25 2020-10-29 University Of Pittsburgh - Of The Commonwealth System Of Higher Education Implantable device coated by a self-assembled monolayer and therapeutic agent

Citations (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5612074A (en) * 1995-12-21 1997-03-18 Leach; Robin L. Nutrient fortified food bar
US6010776A (en) * 1998-05-19 2000-01-04 3M Innovative Properties Company Microporous materials containing cross-linked oil
US6040330A (en) * 1999-01-08 2000-03-21 Bionumerik Pharmaceuticals, Inc. Pharmaceutical formulations of taxanes
US6117911A (en) * 1997-04-11 2000-09-12 Neorx Corporation Compounds and therapies for the prevention of vascular and non-vascular pathologies
US20030077310A1 (en) * 2001-10-22 2003-04-24 Chandrashekhar Pathak Stent coatings containing HMG-CoA reductase inhibitors
US6610035B2 (en) * 1999-05-21 2003-08-26 Scimed Life Systems, Inc. Hydrophilic lubricity coating for medical devices comprising a hybrid top coat
US6610068B1 (en) * 2000-09-22 2003-08-26 Scimed Life Systems, Inc. Non-flush over-the-wire catheter devices
US20030191179A1 (en) * 1999-10-25 2003-10-09 Supergen, Inc. Methods for administration of paclitaxel
US6761903B2 (en) * 1999-06-30 2004-07-13 Lipocine, Inc. Clear oil-containing pharmaceutical compositions containing a therapeutic agent
US20040156879A1 (en) * 2003-01-16 2004-08-12 Muratoglu Orhun K. Methods for making oxidation resistant polymeric material
US6833004B2 (en) * 2001-07-06 2004-12-21 Terumo Kabushiki Kaisha Stent

Family Cites Families (320)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2403458A (en) 1946-07-09 Solvent extraction of drying oils
US1948959A (en) 1934-02-27 Coating material
US2735814A (en) 1956-02-21 Die forging compound
US2368306A (en) 1941-05-02 1945-01-30 Stackpole Carbon Co Method of treating electrodes
US2986540A (en) 1958-08-01 1961-05-30 Stamford Rubber Supply Company Organic plastic materials made from vulcanized oils and their preparation
US3464413A (en) 1967-05-26 1969-09-02 United Merchants & Mfg Medical bandages
US3556294A (en) 1968-11-25 1971-01-19 Bard Inc C R Catheter package with self-contained lubricant
US3567820A (en) 1969-04-09 1971-03-02 George S Sperti Compositions and treatment for the alleviation of diaper rash
JPS4826844B1 (en) 1970-11-17 1973-08-16
US3967728A (en) 1973-03-02 1976-07-06 International Paper Company Catheter package
DE2828623C2 (en) * 1978-06-29 1983-11-17 Kernforschungsanlage Jülich GmbH, 5170 Jülich C 1 6 -to C 1 8 fatty acids, a process for their preparation and their use, labeled with radioactive fluorine
DE2842938A1 (en) 1978-10-02 1980-04-17 Roehm Gmbh METHOD FOR POLYMERIZING BY UV LIGHT
US4447418A (en) 1981-03-06 1984-05-08 Maddoux Lilla A Animal medicine
US4557925A (en) 1982-07-08 1985-12-10 Ab Ferrosan Membrane-coated sustained-release tablets and method
SE8206744D0 (en) 1982-11-26 1982-11-26 Fluidcarbon International Ab PREPARATION FOR CONTROLLED RELEASE OF SUBSTANCES
SE456346B (en) 1984-07-23 1988-09-26 Pharmacia Ab GEL TO PREVENT ADHESION BETWEEN BODY TISSUE AND SET FOR ITS PREPARATION
US5176956A (en) 1984-09-26 1993-01-05 Medtronic, Inc. Biomedical apparatus having fatty acid dimer derived skin compatible adhesive composition thereon
US5411951A (en) 1984-10-04 1995-05-02 Monsanto Company Prolonged release of biologically active somatotropin
HU193951B (en) * 1985-03-11 1987-12-28 Richter Gedeon Vegyeszet Process for producing new sulfur-containing 5-substituted benzimidazol derivatives and pharmaceutical compositions containing them
US4895724A (en) * 1985-06-07 1990-01-23 Pfizer Inc. Chitosan compositions for controlled and prolonged release of macromolecules
US4664114A (en) 1985-08-12 1987-05-12 Kamran Ghodsian Dilator for cervical canal
US4883667A (en) 1985-08-16 1989-11-28 Alza Corporation Process for forming dispensing device
JPS6274364A (en) 1985-09-27 1987-04-06 株式会社 ニツシヨ− Medical applicance
US4847301A (en) 1985-11-13 1989-07-11 Pennwalt Corporation Methods of use of α-(aminoalkyl)-arylacetic acid derivatives
IN166447B (en) 1985-11-27 1990-05-12 Ethicon Inc
US5061281A (en) 1985-12-17 1991-10-29 Allied-Signal Inc. Bioresorbable polymers and implantation devices thereof
DE3634016A1 (en) 1986-04-17 1987-10-29 Lohmann Gmbh & Co Kg AREA-BASED THERAPEUTIC SYSTEM, METHOD FOR THE PRODUCTION THEREOF AND ITS USE
US5371109A (en) 1986-07-01 1994-12-06 Drilletten Ab Controlled release composition for a biologically active material dissolved or dispersed in an L2-phase
DE3622399A1 (en) * 1986-07-01 1988-02-04 Eberhardt Schlueter AUTOMATIC INJECTION DEVICE AND AMPOULE OR CARTRIDGE FOR AN INJECTION DEVICE
US4911707A (en) 1987-02-13 1990-03-27 Ciba-Geigy Corporation Monolithic user-activated transdermal therapeutic system
IL81975A0 (en) 1987-03-24 1987-10-20 Haifa Chemicals Ltd Method for the manufacture of slow-release fertilizers
US6387379B1 (en) * 1987-04-10 2002-05-14 University Of Florida Biofunctional surface modified ocular implants, surgical instruments, medical devices, prostheses, contact lenses and the like
US4894231A (en) * 1987-07-28 1990-01-16 Biomeasure, Inc. Therapeutic agent delivery system
US4947840A (en) 1987-08-21 1990-08-14 Massachusetts Institute Of Technology Biodegradable templates for the regeneration of tissues
US4846844A (en) 1987-08-31 1989-07-11 Eli Lilly And Company Antimicrobial coated implants
US5017229A (en) 1990-06-25 1991-05-21 Genzyme Corporation Water insoluble derivatives of hyaluronic acid
DE3734147C2 (en) 1987-10-09 1998-10-29 Braun Melsungen Ag Isotonic omega-3 fatty acid-containing fat emulsion and its use
US5254105A (en) 1988-05-26 1993-10-19 Haaga John R Sheath for wound closure caused by a medical tubular device
US4941308A (en) 1988-07-25 1990-07-17 Abbott Laboratories Method of packaging for a sterilizable calibratable medical device
WO1990001969A1 (en) 1988-08-24 1990-03-08 Slepian Marvin J Biodegradable polymeric endoluminal sealing
US4938763B1 (en) 1988-10-03 1995-07-04 Atrix Lab Inc Biodegradable in-situ forming implants and method of producing the same
DE3903056A1 (en) 1989-02-02 1990-08-09 Braun Melsungen Ag FAT EMULSION FOR INTRAPERITONEAL APPLICATION, ITS PRODUCTION AND APPLICATION
US6146358A (en) * 1989-03-14 2000-11-14 Cordis Corporation Method and apparatus for delivery of therapeutic agent
US5171148A (en) 1989-06-30 1992-12-15 Ethicon, Inc. Dental inserts for treatment of periodontal disease
FR2653338B1 (en) * 1989-10-23 1994-06-10 Dow Corning Sa FORMULATION FOR SUSTAINED RELEASE DRUGS AND THE USE THEREOF.
US5843089A (en) 1990-12-28 1998-12-01 Boston Scientific Corporation Stent lining
US5179174A (en) 1990-04-23 1993-01-12 C. R. Bard, Inc. Flexible lubricious organic coatings
US5202310A (en) 1990-06-06 1993-04-13 Levy Gary A Cyclosporine metabolites
GB9018144D0 (en) 1990-08-17 1990-10-03 Unilever Plc Polymerisation process
DE4133694C2 (en) 1991-10-11 1993-10-07 Fresenius Ag Use of an emulsion with polyunsaturated fatty acids for i.v. administration for the treatment of skin diseases
US5147374A (en) 1991-12-05 1992-09-15 Alfredo Fernandez Prosthetic mesh patch for hernia repair
US5683448A (en) 1992-02-21 1997-11-04 Boston Scientific Technology, Inc. Intraluminal stent and graft
SE9200541D0 (en) 1992-02-24 1992-02-24 Kabi Pharmacia Ab NEW USEE OF OMEGA-3-FATTY ACIDS
ES2153378T3 (en) 1992-02-28 2001-03-01 Univ Texas PHOTOPOLIMERIZABLE BIODEGRADABLE HYDROGELS AS FABRIC CONTACT MATERIALS AND CONTROLLED DISCHARGE CARRIER.
WO1993017635A1 (en) 1992-03-04 1993-09-16 C.R. Bard, Inc. Composite prosthesis and method for limiting the incidence of postoperative adhesions
US5766246A (en) 1992-05-20 1998-06-16 C. R. Bard, Inc. Implantable prosthesis and method and apparatus for loading and delivering an implantable prothesis
DE4222380A1 (en) 1992-07-08 1994-01-13 Ernst Peter Prof Dr M Strecker Endoprosthesis implantable percutaneously in a patient's body
US5879359A (en) 1992-08-03 1999-03-09 Fidia S.P.A. Biodegradable guide channels comprised of esters of hyaluronic acid for use in tissue repair as surgical aids
US5753343A (en) * 1992-08-04 1998-05-19 Minnesota Mining And Manufacturing Company Corrugated nonwoven webs of polymeric microfiber
DE4236912A1 (en) * 1992-10-31 1994-05-05 Huels Chemische Werke Ag Crosslinked castor oil derivatives
DE4238994A1 (en) 1992-11-19 1994-05-26 Basf Ag Aniline as a marking agent for mineral oils
CA2114290C (en) 1993-01-27 2006-01-10 Nagabushanam Totakura Post-surgical anti-adhesion device
US6491938B2 (en) 1993-05-13 2002-12-10 Neorx Corporation Therapeutic inhibitor of vascular smooth muscle cells
US5356432B1 (en) 1993-02-05 1997-02-04 Bard Inc C R Implantable mesh prosthesis and method for repairing muscle or tissue wall defects
US5368602A (en) 1993-02-11 1994-11-29 De La Torre; Roger A. Surgical mesh with semi-rigid border members
US5433996A (en) 1993-02-18 1995-07-18 W. L. Gore & Associates, Inc. Laminated patch tissue repair sheet material
GB2280850B (en) 1993-07-28 1997-07-30 Johnson & Johnson Medical Absorbable composite materials for use in the treatment of periodontal disease
US6015844A (en) 1993-03-22 2000-01-18 Johnson & Johnson Medical, Inc. Composite surgical material
US5464650A (en) * 1993-04-26 1995-11-07 Medtronic, Inc. Intravascular stent and method
US5380328A (en) 1993-08-09 1995-01-10 Timesh, Inc. Composite perforated implant structures
AU7564494A (en) 1993-08-13 1995-03-14 Smith & Nephew Richards Inc. Microporous polymeric foams and microtextured surfaces
FR2710161B1 (en) * 1993-09-13 1995-11-24 Suisse Electronique Microtech Miniature array of light shutters.
US5411988A (en) 1993-10-27 1995-05-02 Bockow; Barry I. Compositions and methods for inhibiting inflammation and adhesion formation
US5403283A (en) * 1993-10-28 1995-04-04 Luther Medical Products, Inc. Percutaneous port catheter assembly and method of use
US6228383B1 (en) * 1994-03-03 2001-05-08 Gs Development Ab Use of fatty acid esters as bioadhesive substances
CA2186750C (en) * 1994-03-30 2008-08-05 Jens Hansen Use of fatty acid esters as bioadhesive substances
US5760081A (en) 1994-05-10 1998-06-02 The General Hospital Corporation Omega 3 fatty acids in the prevention of ventricular fibrillation
US5547677A (en) 1994-05-20 1996-08-20 Novavax, Inc. Antimicrobial oil-in-water emulsions
US5549901A (en) 1994-05-20 1996-08-27 Novavax, Inc. Antimicrobial oil-in-water emulsions
US5629077A (en) 1994-06-27 1997-05-13 Advanced Cardiovascular Systems, Inc. Biodegradable mesh and film stent
US5716614A (en) * 1994-08-05 1998-02-10 Molecular/Structural Biotechnologies, Inc. Method for delivering active agents to mammalian brains in a complex with eicosapentaenoic acid or docosahexaenoic acid-conjugated polycationic carrier
US5931165A (en) 1994-09-06 1999-08-03 Fusion Medical Technologies, Inc. Films having improved characteristics and methods for their preparation and use
US5591230A (en) * 1994-09-07 1997-01-07 Global Therapeutics, Inc. Radially expandable stent
SE518619C2 (en) 1994-12-09 2002-10-29 Gs Dev Ab Controlled release composition containing monocaproin
US5509899A (en) * 1994-09-22 1996-04-23 Boston Scientific Corp. Medical device with lubricious coating
US6176863B1 (en) 1994-09-29 2001-01-23 Bard Asdi Inc. Hernia mesh patch with I-shaped filament
US5637113A (en) * 1994-12-13 1997-06-10 Advanced Cardiovascular Systems, Inc. Polymer film for wrapping a stent structure
US6262109B1 (en) 1995-12-22 2001-07-17 Henkel Corporation Methods of preventing and/or treating high serum levels of cholesterol and/or lipids
US5629021A (en) 1995-01-31 1997-05-13 Novavax, Inc. Micellar nanoparticles
US5496832A (en) 1995-03-09 1996-03-05 American Home Products Corporation Method of treating cardiac inflammatory disease
US5580923A (en) 1995-03-14 1996-12-03 Collagen Corporation Anti-adhesion films and compositions for medical use
KR19980702961A (en) 1995-03-17 1998-09-05 나까도미 히로다까 Recombinant Human Immunodeficiency Virus Producing Cell Line
US5900245A (en) 1996-03-22 1999-05-04 Focal, Inc. Compliant tissue sealants
US5837313A (en) * 1995-04-19 1998-11-17 Schneider (Usa) Inc Drug release stent coating process
MY118354A (en) * 1995-05-01 2004-10-30 Scarista Ltd 1,3-propane diol derivatives as bioactive compounds
SE504582C2 (en) 1995-07-06 1997-03-10 Gs Dev Ab Cyclosporin composition based on an L2 phase
SI9620106B (en) 1995-08-29 2005-12-31 Fidia Advanced Biopolymers Srl Bio-materials for preventing post-surgical adhesions comprised of hyaluronic acid derivatives
GB9602638D0 (en) 1995-09-07 1996-04-10 Croda Int Plc Triglyceride drying oil derivatives
AU702030B2 (en) 1995-10-12 1999-02-11 Gs Development Ab A pharmaceutical composition for administration of an active substance to or through a skin or mucosal surface
US5736152A (en) 1995-10-27 1998-04-07 Atrix Laboratories, Inc. Non-polymeric sustained release delivery system
US5714360A (en) * 1995-11-03 1998-02-03 Bsi Corporation Photoactivatable water soluble cross-linking agents containing an onium group
US6132765A (en) 1996-04-12 2000-10-17 Uroteq Inc. Drug delivery via therapeutic hydrogels
US5817343A (en) * 1996-05-14 1998-10-06 Alkermes, Inc. Method for fabricating polymer-based controlled-release devices
US6764509B2 (en) * 1996-09-06 2004-07-20 Carbomedics Inc. Prosthetic heart valve with surface modification
WO1998012274A1 (en) * 1996-09-23 1998-03-26 Chandrashekar Pathak Methods and devices for preparing protein concentrates
DE69720787T2 (en) * 1996-10-11 2004-03-18 Scarista Ltd., Douglas PHARMACEUTICAL PREPARATION CONTAINING EICOSAPENTIC ACID AND / OR STEARIDONIC ACID
EP0935425A4 (en) 1996-10-25 2000-02-23 Mccormick & Co Inc Fat-coated encapsulation compositions and method for preparing the same
US5843919A (en) 1996-11-25 1998-12-01 Burger; John A. Composition and method for the treatment of arthritis
SE511313C2 (en) 1997-01-13 1999-09-06 Gs Dev Ab A controlled release composition comprising diacylglycerol fatty acid ester
IL121320A (en) 1997-02-23 2000-12-06 Ibr Ltd Extracts from cells or tissue of organisms which are capable of entering dormancy for inhibition of proliferation of target cells or tissue
US6152944A (en) * 1997-03-05 2000-11-28 Scimed Life Systems, Inc. Catheter with removable balloon protector and stent delivery system with removable stent protector
US10028851B2 (en) 1997-04-15 2018-07-24 Advanced Cardiovascular Systems, Inc. Coatings for controlling erosion of a substrate of an implantable medical device
US6273913B1 (en) 1997-04-18 2001-08-14 Cordis Corporation Modified stent useful for delivery of drugs along stent strut
US6120539A (en) * 1997-05-01 2000-09-19 C. R. Bard Inc. Prosthetic repair fabric
US6630151B1 (en) 1997-05-27 2003-10-07 Baker Hughes Incorporated Method of increasing viscosity of oil-based compositions and compositions resulting therefrom
ATE246241T1 (en) 1997-05-29 2003-08-15 Leuven K U Res & Dev REMOVAL OF COMPOUNDS CONTAINING TRANS-UNSATURATED FATTY ACID BY SELECTIVE ADSORPTION WITH ZEOLITES
US5824082A (en) 1997-07-14 1998-10-20 Brown; Roderick B. Patch for endoscopic repair of hernias
WO1999008544A1 (en) 1997-08-15 1999-02-25 Unitika Ltd. Mannose-containing feed and process for producing the same
US5854382A (en) 1997-08-18 1998-12-29 Meadox Medicals, Inc. Bioresorbable compositions for implantable prostheses
US6884429B2 (en) * 1997-09-05 2005-04-26 Isotechnika International Inc. Medical devices incorporating deuterated rapamycin for controlled delivery thereof
US6281175B1 (en) 1997-09-23 2001-08-28 Scimed Life Systems, Inc. Medical emulsion for lubrication and delivery of drugs
US6083950A (en) * 1997-11-13 2000-07-04 Ranbaxy Laboratories Limited 1-(4-arylpiperazin-1-yl)-ω-[n-(α,ω-dicarboximido)]-alka nes useful as uro-selective α1-adrenoceptor blockers
WO1999025336A1 (en) 1997-11-17 1999-05-27 Lipogenics, Inc. Methods for preventing restenosis using tocotrienols
JP4761093B2 (en) * 1997-12-10 2011-08-31 シクロスポリン セラポイティクス リミテッド Pharmaceutical composition comprising omega-3 fatty acid oil
US6187335B1 (en) 1997-12-31 2001-02-13 Orasomal Technologies, Inc. Polymerizable fatty acids, phospholipids and polymerized liposomes therefrom
US20020002154A1 (en) 1998-02-11 2002-01-03 Pol-Henri Guivarc'h Method and composition for treatment of inflammatory conditions
EP1062952B1 (en) * 1998-03-11 2003-08-06 Grelan Pharmaceutical Co., Ltd. Bubbling enteric preparations
US6465525B1 (en) 1998-03-18 2002-10-15 Surmodics, Inc. Latent reactive blood compatible agents
US20030040790A1 (en) 1998-04-15 2003-02-27 Furst Joseph G. Stent coating
US6206916B1 (en) * 1998-04-15 2001-03-27 Joseph G. Furst Coated intraluminal graft
US6056970A (en) * 1998-05-07 2000-05-02 Genzyme Corporation Compositions comprising hemostatic compounds and bioabsorbable polymers
US6197357B1 (en) 1998-05-28 2001-03-06 University Of Massachusetts Refined vegetable oils and extracts thereof
WO1999062572A1 (en) 1998-06-03 1999-12-09 N.V. Bekaert S.A. Stents with a diamond like coating
US6254634B1 (en) 1998-06-10 2001-07-03 Surmodics, Inc. Coating compositions
DE19929184A1 (en) 1998-06-26 1999-12-30 Mclaughlin James A Radio frequency plasma enhanced chemical vapor deposition of diamond like films onto medical devices such as catheter wires
US6369039B1 (en) * 1998-06-30 2002-04-09 Scimed Life Sytems, Inc. High efficiency local drug delivery
US6669735B1 (en) 1998-07-31 2003-12-30 Davol, Inc. Prosthesis for surgical treatment of hernia
AU771367B2 (en) * 1998-08-20 2004-03-18 Cook Medical Technologies Llc Coated implantable medical device
US6093792A (en) 1998-09-16 2000-07-25 University Of Massachusetts Bioresorbable copolymers
JP4613275B2 (en) 1998-11-02 2011-01-12 エラン ファーマ インターナショナル,リミティド Multiparticulate modified release composition
US6211315B1 (en) * 1998-11-12 2001-04-03 Iowa State University Research Foundation, Inc. Lewis acid-catalyzed polymerization of biological oils and resulting polymeric materials
CN100377749C (en) 1998-12-31 2008-04-02 血管技术药物公司 Stent grafts with bioactive coatings
US7238711B1 (en) 1999-03-17 2007-07-03 Cambridge University Technical Services Ltd. Compounds and methods to inhibit or augment an inflammatory response
US7947015B2 (en) 1999-01-25 2011-05-24 Atrium Medical Corporation Application of a therapeutic substance to a tissue location using an expandable medical device
WO2000069916A1 (en) * 1999-01-25 2000-11-23 Ato B.V. Biopolymer nanoparticles
SE9900465D0 (en) * 1999-02-12 1999-02-12 Astra Ab Storage package
US6248363B1 (en) * 1999-11-23 2001-06-19 Lipocine, Inc. Solid carriers for improved delivery of active ingredients in pharmaceutical compositions
WO2000051662A1 (en) * 1999-03-04 2000-09-08 Tepha, Inc. Bioabsorbable, biocompatible polymers for tissue engineering
US6368658B1 (en) 1999-04-19 2002-04-09 Scimed Life Systems, Inc. Coating medical devices using air suspension
JP2002544275A (en) * 1999-05-14 2002-12-24 ジ・オーストラリアン・ナショナル・ユニバーシティー Compounds and methods of treatment
US6673843B2 (en) 1999-06-30 2004-01-06 Emory University Curcumin and curcuminoid inhibition of angiogenesis
ATE277647T1 (en) 1999-07-28 2004-10-15 United States Surgical Corp ANTI-ADHESION LAYER MADE OF HYALURONIC ACID
US6762203B2 (en) * 1999-08-03 2004-07-13 Kao Corporation Oil composition
US20030224071A1 (en) 1999-08-20 2003-12-04 Howard Murad Pharmaceutical compositions and methods for managing connective tissue ailments
US6503556B2 (en) * 2000-12-28 2003-01-07 Advanced Cardiovascular Systems, Inc. Methods of forming a coating for a prosthesis
US6497833B1 (en) 1999-09-30 2002-12-24 Amad Tayebi Colored laminate and a method for coloring the surface of a membrane
US6203551B1 (en) 1999-10-04 2001-03-20 Advanced Cardiovascular Systems, Inc. Chamber for applying therapeutic substances to an implant device
US6468354B2 (en) 1999-10-05 2002-10-22 Taiwan Semiconductor Manufacturing Co., Ltd Semiconductor wafer support
JP2003511110A (en) 1999-10-06 2003-03-25 ザ ペン ステイト リサーチ ファンデーション System and device for preventing restenosis in body vessels
CA2403279A1 (en) 1999-10-13 2001-04-19 Biocardia, Inc. Pulmonary vein arrhythmia diagnostic device and method for use
JP2001120582A (en) 1999-10-22 2001-05-08 Gunze Ltd Artificial cardiac valve and method of manufacturing the same
US7066912B2 (en) * 1999-12-17 2006-06-27 Astra Tech Ab Catheter wetting apparatus
US6447835B1 (en) 2000-02-15 2002-09-10 Scimed Life Systems, Inc. Method of coating polymeric tubes used in medical devices
EP1259230A2 (en) * 2000-02-18 2002-11-27 Cv Therapeutics, Inc. Partial fatty acid oxidation inhibitors in the treatment of congestive heart failure
EP1132058A1 (en) 2000-03-06 2001-09-12 Advanced Laser Applications Holding S.A. Intravascular prothesis
US9314339B2 (en) 2000-03-27 2016-04-19 Formae, Inc. Implants for replacing cartilage, with negatively-charged hydrogel surfaces and flexible matrix reinforcement
SE520688C2 (en) 2000-04-11 2003-08-12 Bone Support Ab An injectable bone mineral replacement material
US7875283B2 (en) 2000-04-13 2011-01-25 Advanced Cardiovascular Systems, Inc. Biodegradable polymers for use with implantable medical devices
US6527801B1 (en) 2000-04-13 2003-03-04 Advanced Cardiovascular Systems, Inc. Biodegradable drug delivery material for stent
AU2001255453A1 (en) * 2000-04-18 2001-10-30 Clemson University Polylactide/dextran graft co-polymers for biomaterial and tissue engineering applications
US7419678B2 (en) 2000-05-12 2008-09-02 Cordis Corporation Coated medical devices for the prevention and treatment of vascular disease
US6776796B2 (en) 2000-05-12 2004-08-17 Cordis Corportation Antiinflammatory drug and delivery device
US6670355B2 (en) * 2000-06-16 2003-12-30 Wyeth Method of treating cardiovascular disease
WO2002008333A1 (en) 2000-07-25 2002-01-31 Mitsui Chemicals, Inc. Curable composition and uses thereof
DE60133744T2 (en) 2000-07-28 2009-05-14 Anika Therapeutics, Inc., Woburn BIOABSORBABLE COMPOSITE MATERIALS FROM DERIVATED HYALURONIC ACID
DE10036832C1 (en) * 2000-07-28 2001-12-13 Schott Glas Applying heat fixed lubricant layer onto inner wall of cylindrical medical containers comprises applying lubricant, homogenizing to layer and selectively heat-fixing lubricant layer using IR radiation
US6451373B1 (en) * 2000-08-04 2002-09-17 Advanced Cardiovascular Systems, Inc. Method of forming a therapeutic coating onto a surface of an implantable prosthesis
US6421991B1 (en) * 2000-09-26 2002-07-23 Deere & Company Doffer for a cotton cleaner
US7261735B2 (en) 2001-05-07 2007-08-28 Cordis Corporation Local drug delivery devices and methods for maintaining the drug coatings thereon
ATA16992000A (en) 2000-10-05 2001-12-15 Michael Dr Koncar METHOD FOR PRODUCING FATTY ACID ALKYL ESTERS
US6485752B1 (en) 2000-10-23 2002-11-26 Otto Torbjorn Hansen Composition and method for alleviating joint pain and stiffness
US6794485B2 (en) 2000-10-27 2004-09-21 Poly-Med, Inc. Amorphous polymeric polyaxial initiators and compliant crystalline copolymers therefrom
US20020161168A1 (en) 2000-10-27 2002-10-31 Shalaby Shalaby W. Amorphous polymeric polyaxial initiators and compliant crystalline copolymers therefrom
ATE367836T1 (en) 2000-10-31 2007-08-15 Cook Inc COATED IMPLANTABLE MEDICAL DEVICES
US20050084514A1 (en) 2000-11-06 2005-04-21 Afmedica, Inc. Combination drug therapy for reducing scar tissue formation
US20040241211A9 (en) 2000-11-06 2004-12-02 Fischell Robert E. Devices and methods for reducing scar tissue formation
US20040018228A1 (en) 2000-11-06 2004-01-29 Afmedica, Inc. Compositions and methods for reducing scar tissue formation
US6534693B2 (en) 2000-11-06 2003-03-18 Afmedica, Inc. Surgically implanted devices having reduced scar tissue formation
US7749539B2 (en) 2000-11-30 2010-07-06 Efrat Biopolymers Ltd. Polymeric formulations for drug delivery
US20040030377A1 (en) * 2001-10-19 2004-02-12 Alexander Dubson Medicated polymer-coated stent assembly
US20020084178A1 (en) 2000-12-19 2002-07-04 Nicast Corporation Ltd. Method and apparatus for manufacturing polymer fiber shells via electrospinning
CA2365376C (en) 2000-12-21 2006-03-28 Ethicon, Inc. Use of reinforced foam implants with enhanced integrity for soft tissue repair and regeneration
US6599323B2 (en) 2000-12-21 2003-07-29 Ethicon, Inc. Reinforced tissue implants and methods of manufacture and use
US6852330B2 (en) 2000-12-21 2005-02-08 Depuy Mitek, Inc. Reinforced foam implants with enhanced integrity for soft tissue repair and regeneration
US6471980B2 (en) * 2000-12-22 2002-10-29 Avantec Vascular Corporation Intravascular delivery of mycophenolic acid
US20020120333A1 (en) * 2001-01-31 2002-08-29 Keogh James R. Method for coating medical device surfaces
US6783542B2 (en) 2001-02-22 2004-08-31 Scimed Life Systems, Inc Crimpable balloon/stent protector
US6479683B1 (en) 2001-03-06 2002-11-12 Ag Processing Inc Process for conjugating fatty acid esters
US7771468B2 (en) 2001-03-16 2010-08-10 Angiotech Biocoatings Corp. Medicated stent having multi-layer polymer coating
ES2365698T3 (en) 2001-03-26 2011-10-10 Tyco Healthcare Group Lp OIL COVERED SUTURES.
US7056339B2 (en) * 2001-04-20 2006-06-06 The Board Of Trustees Of The Leland Stanford Junior University Drug delivery platform
US20020188754A1 (en) * 2001-04-27 2002-12-12 Foster Michael S. Method and system for domain addressing in a communications network
US7244853B2 (en) 2001-05-09 2007-07-17 President And Fellows Of Harvard College Dioxanes and uses thereof
US6685956B2 (en) 2001-05-16 2004-02-03 The Research Foundation At State University Of New York Biodegradable and/or bioabsorbable fibrous articles and methods for using the articles for medical applications
WO2002100455A2 (en) 2001-06-08 2002-12-19 Baylor College Of Medicine Use of ozone for the prevention of infection caused by medical devices
US7201940B1 (en) 2001-06-12 2007-04-10 Advanced Cardiovascular Systems, Inc. Method and apparatus for thermal spray processing of medical devices
EP1402906A4 (en) 2001-06-15 2007-04-25 Gunze Kk Synechia inhibitory material
US6565659B1 (en) 2001-06-28 2003-05-20 Advanced Cardiovascular Systems, Inc. Stent mounting assembly and a method of using the same to coat a stent
US7034037B2 (en) * 2001-06-29 2006-04-25 Ethicon, Inc. Compositions and medical devices utilizing bioabsorbable polymeric waxes and rapamycin
US7030127B2 (en) 2001-06-29 2006-04-18 Ethicon, Inc. Composition and medical devices utilizing bioabsorbable polymeric waxes
US6787179B2 (en) 2001-06-29 2004-09-07 Ethicon, Inc. Sterilization of bioactive coatings
US6682771B2 (en) 2001-07-02 2004-01-27 Scimed Life Systems, Inc. Coating dispensing system and method using a solenoid head for coating medical devices
ES2739023T3 (en) 2001-07-06 2020-01-28 Veloxis Pharmaceuticals As Controlled agglomeration
US6444318B1 (en) * 2001-07-17 2002-09-03 Surmodics, Inc. Self assembling monolayer compositions
US6585997B2 (en) 2001-08-16 2003-07-01 Access Pharmaceuticals, Inc. Mucoadhesive erodible drug delivery device for controlled administration of pharmaceuticals and other active compounds
US20040137066A1 (en) 2001-11-26 2004-07-15 Swaminathan Jayaraman Rationally designed therapeutic intravascular implant coating
US6641611B2 (en) 2001-11-26 2003-11-04 Swaminathan Jayaraman Therapeutic coating for an intravascular implant
IN2014DN10834A (en) 2001-09-17 2015-09-04 Psivida Inc
US6753071B1 (en) 2001-09-27 2004-06-22 Advanced Cardiovascular Systems, Inc. Rate-reducing membrane for release of an agent
US20030065345A1 (en) 2001-09-28 2003-04-03 Kevin Weadock Anastomosis devices and methods for treating anastomotic sites
US20030064965A1 (en) 2001-10-02 2003-04-03 Jacob Richter Method of delivering drugs to a tissue using drug-coated medical devices
JP2005507710A (en) 2001-10-31 2005-03-24 エドワーズ ライフサイエンシーズ コーポレイション Radially expandable tubular stent graft that elutes drug
WO2003041756A1 (en) 2001-11-08 2003-05-22 Dsb Invest Holding Sa Endoluminal devices coated with latrunculin to prevent ingrowth of cells
US8460693B2 (en) 2001-11-08 2013-06-11 Atrium Medical Corporation Intraluminal device with a coating containing synthetic fish oil and a therapeutic agent
US6663880B1 (en) * 2001-11-30 2003-12-16 Advanced Cardiovascular Systems, Inc. Permeabilizing reagents to increase drug delivery and a method of local delivery
CA2467581A1 (en) 2001-11-30 2003-06-05 Universite Laval Milk protein biofilm and uses thereof
EP1467678A1 (en) 2001-12-21 2004-10-20 Cardiovasc, Inc. Composite stent with polymeric covering and bioactive coating
US6790213B2 (en) 2002-01-07 2004-09-14 C.R. Bard, Inc. Implantable prosthesis
EP1478648B1 (en) 2002-02-01 2014-04-30 ARIAD Pharmaceuticals, Inc. Phosphorus-containing compounds and uses thereof
US6887270B2 (en) 2002-02-08 2005-05-03 Boston Scientific Scimed, Inc. Implantable or insertable medical device resistant to microbial growth and biofilm formation
US20060068674A1 (en) 2002-02-13 2006-03-30 Dixit Ajit S Novel laminates for producing high strength porous sterilizable packaging
SE0201330D0 (en) * 2002-04-30 2002-04-30 Astra Tech Ab Catheter assembly
US20030204168A1 (en) 2002-04-30 2003-10-30 Gjalt Bosma Coated vascular devices
US6645547B1 (en) * 2002-05-02 2003-11-11 Labcoat Ltd. Stent coating device
US7048962B2 (en) * 2002-05-02 2006-05-23 Labcoat, Ltd. Stent coating device
US20030207907A1 (en) 2002-05-03 2003-11-06 Iversen Patrick L. Delivery of microparticle-conjugated drugs for inhibition of stenosis
JP2005525911A (en) * 2002-05-20 2005-09-02 オーバス メディカル テクノロジーズ インク. Implantable drug eluting medical device
WO2004004598A2 (en) 2002-07-02 2004-01-15 Polycord, Inc. Polymerized and modified rapamycins and their use in coating medical prostheses
US6767405B2 (en) 2002-07-10 2004-07-27 Carmeda Ab Apparatus and process for coating articles
EP1521603B1 (en) 2002-07-12 2011-01-19 Cook Incorporated Coated medical device
US7101381B2 (en) 2002-08-02 2006-09-05 C.R. Bard, Inc. Implantable prosthesis
CN1678366B (en) 2002-08-23 2010-06-09 国立循环器病中心总长所代表的日本国 Stent and process for producing the same
US7732535B2 (en) * 2002-09-05 2010-06-08 Advanced Cardiovascular Systems, Inc. Coating for controlled release of drugs from implantable medical devices
US6875231B2 (en) 2002-09-11 2005-04-05 3F Therapeutics, Inc. Percutaneously deliverable heart valve
US20040146546A1 (en) 2002-09-26 2004-07-29 Angiotech Pharmaceuticals, Inc. Perivascular wraps
US6991096B2 (en) 2002-09-27 2006-01-31 Medtronic Minimed, Inc. Packaging system
US20050095267A1 (en) 2002-12-04 2005-05-05 Todd Campbell Nanoparticle-based controlled release polymer coatings for medical implants
US6899729B1 (en) * 2002-12-18 2005-05-31 Advanced Cardiovascular Systems, Inc. Stent for treating vulnerable plaque
US7152611B2 (en) 2002-12-30 2006-12-26 International Tape Partners, Llc Coated multifilament dental devices overcoated with imbedded particulate
US6919100B2 (en) 2003-01-22 2005-07-19 Cordis Corporation Method for coating medical devices
US20040224003A1 (en) 2003-02-07 2004-11-11 Schultz Robert K. Drug formulations for coating medical devices
US20040167572A1 (en) 2003-02-20 2004-08-26 Roth Noah M. Coated medical devices
US20040170685A1 (en) 2003-02-26 2004-09-02 Medivas, Llc Bioactive stents and methods for use thereof
US7077910B2 (en) 2003-04-07 2006-07-18 Surmodics, Inc. Linear rail coating apparatus and method
US7972616B2 (en) 2003-04-17 2011-07-05 Nanosys, Inc. Medical device applications of nanostructured surfaces
DE10318803B4 (en) * 2003-04-17 2005-07-28 Translumina Gmbh Device for applying active substances to surfaces of medical implants, in particular stents
US20040230176A1 (en) 2003-04-23 2004-11-18 Medtronic Vascular, Inc. System for treating a vascular condition that inhibits restenosis at stent ends
DE10323676A1 (en) 2003-05-15 2004-12-02 Aesculap Ag & Co. Kg Implant with long-term antibiotic effect
US8021418B2 (en) 2003-06-19 2011-09-20 Boston Scientific Scimed, Inc. Sandwiched radiopaque marker on covered stent
WO2005007019A2 (en) 2003-07-07 2005-01-27 Ethicon, Inc. Implantable surgical mesh having a lubricious coating
JP2007502135A (en) 2003-08-14 2007-02-08 ブルー・メディカル・デバイシーズ・ベスローテン・フェンノートシャップ Intraluminal prosthesis comprising a therapeutic agent
US8021331B2 (en) 2003-09-15 2011-09-20 Atrium Medical Corporation Method of coating a folded medical device
US6996952B2 (en) 2003-09-30 2006-02-14 Codman & Shurtleff, Inc. Method for improving stability and effectivity of a drug-device combination product
US7192440B2 (en) * 2003-10-15 2007-03-20 Xtent, Inc. Implantable stent delivery devices and methods
GB0326180D0 (en) 2003-11-11 2003-12-17 Leuven K U Res & Dev Biocompatible coating of medical devices
CN100548228C (en) 2003-11-13 2009-10-14 阿尔扎公司 The compositions and the device that are used for transdermal delivery
US20050112170A1 (en) 2003-11-20 2005-05-26 Hossainy Syed F. Coatings for implantable devices comprising polymers of lactic acid and methods for fabricating the same
EP1687043A2 (en) 2003-11-20 2006-08-09 Angiotech International Ag Electrical devices and anti-scarring agents
US20050113849A1 (en) 2003-11-26 2005-05-26 Nicholas Popadiuk Prosthetic repair device
US8747881B2 (en) 2003-12-19 2014-06-10 Cordis Corporation Intraluminal medical devices in combination with therapeutic agents
US20050268573A1 (en) 2004-01-20 2005-12-08 Avantec Vascular Corporation Package of sensitive articles
US7303758B2 (en) 2004-01-20 2007-12-04 Cordis Corporation Local vascular delivery of mycophenolic acid in combination with rapamycin to prevent restenosis following vascular injury
US20050159809A1 (en) 2004-01-21 2005-07-21 Medtronic Vascular, Inc. Implantable medical devices for treating or preventing restenosis
US7211108B2 (en) 2004-01-23 2007-05-01 Icon Medical Corp. Vascular grafts with amphiphilic block copolymer coatings
US7806924B2 (en) 2004-02-18 2010-10-05 Cordis Corporation Implantable structures for local vascular delivery of cladribine in combination with rapamycin for restenosis
AU2005216592B8 (en) 2004-02-28 2009-06-04 Hemoteq Ag Biocompatible coating, method, and use of medical surfaces
US7775965B2 (en) 2004-03-09 2010-08-17 The Board Of Regents Of The University Of Oklahoma Decellularized grafts from umbilical cord vessels and process for preparing and using same
US8075910B2 (en) 2004-05-20 2011-12-13 Pbm Pharmaceuticals, Inc. Oral compositions comprising edible oils and vitamins and/or minerals and methods for making oral compositions
CA2565725A1 (en) 2004-05-25 2005-12-08 Novamont S.P.A. Perforated biodegradable films and sanitary products obtained therefrom
US20080044481A1 (en) * 2004-05-27 2008-02-21 Mordechai Harel Microparticles for Oral Delivery
AU2005268647B2 (en) 2004-08-03 2011-04-14 Tissuemed Limited Tissue-adhesive materials
WO2006024491A1 (en) 2004-08-30 2006-03-09 Interstitial Therapeutics Methods and compositions for the treatment of cell proliferation
US20060058881A1 (en) 2004-09-16 2006-03-16 Trieu Hai H Intervertebral disc nucleus implants and methods
US20060058737A1 (en) * 2004-09-16 2006-03-16 Herweck Steve A Catheter treatment stylet
US8858978B2 (en) 2004-09-28 2014-10-14 Atrium Medical Corporation Heat cured gel and method of making
US20090011116A1 (en) 2004-09-28 2009-01-08 Atrium Medical Corporation Reducing template with coating receptacle containing a medical device to be coated
US9012506B2 (en) 2004-09-28 2015-04-21 Atrium Medical Corporation Cross-linked fatty acid-based biomaterials
US8367099B2 (en) 2004-09-28 2013-02-05 Atrium Medical Corporation Perforated fatty acid films
US8312836B2 (en) 2004-09-28 2012-11-20 Atrium Medical Corporation Method and apparatus for application of a fresh coating on a medical device
US9000040B2 (en) 2004-09-28 2015-04-07 Atrium Medical Corporation Cross-linked fatty acid-based biomaterials
US20060083768A1 (en) 2004-09-28 2006-04-20 Atrium Medical Corporation Method of thickening a coating using a drug
US9592324B2 (en) 2006-11-06 2017-03-14 Atrium Medical Corporation Tissue separating device with reinforced support for anchoring mechanisms
US9801982B2 (en) 2004-09-28 2017-10-31 Atrium Medical Corporation Implantable barrier device
US20060088596A1 (en) 2004-09-28 2006-04-27 Atrium Medical Corporation Solubilizing a drug for use in a coating
US20060093643A1 (en) 2004-11-04 2006-05-04 Stenzel Eric B Medical device for delivering therapeutic agents over different time periods
US7727554B2 (en) * 2004-12-21 2010-06-01 Board Of Regents Of The University Of Nebraska By And Behalf Of The University Of Nebraska Medical Center Sustained-release nanoparticle compositions and methods for using the same
TWI244270B (en) 2005-01-17 2005-11-21 Novatek Microelectronics Corp Digital-to-analog converter
EP1861055A4 (en) 2005-03-22 2013-01-16 Covidien Lp Bioactive wide-weave mesh
US8747882B2 (en) 2005-04-21 2014-06-10 Astra Tech Ab Catheter assembly with bactericidal effect
US8414907B2 (en) 2005-04-28 2013-04-09 Warsaw Orthopedic, Inc. Coatings on medical implants to guide soft tissue healing
AU2006346369B2 (en) 2005-07-18 2013-02-21 University Of Massachusetts Lowell Compositions and methods for making and using nanoemulsions
US9278161B2 (en) 2005-09-28 2016-03-08 Atrium Medical Corporation Tissue-separating fatty acid adhesion barrier
US9427423B2 (en) 2009-03-10 2016-08-30 Atrium Medical Corporation Fatty-acid based particles
US20070084144A1 (en) 2005-10-14 2007-04-19 Atrium Medical Corporation Packaging and sterilization of medical devices
CA2626030A1 (en) 2005-10-15 2007-04-26 Atrium Medical Corporation Hydrophobic cross-linked gels for bioabsorbable drug carrier coatings
US20070093894A1 (en) 2005-10-25 2007-04-26 Baylor College Of Medicine Incorporation of antimicrobial combinations onto devices to reduce infection
US10029034B2 (en) 2005-12-15 2018-07-24 CARDINAL HEALTH SWITZERLAND 515 GmbH Drug-eluting articles with improved drug release profiles
US8784886B2 (en) 2006-03-09 2014-07-22 GlaxoSmithKline, LLC Coating capsules with active pharmaceutical ingredients
US20070280986A1 (en) 2006-06-01 2007-12-06 Carlos Gil Intra-operative coating of implants
US20070299538A1 (en) 2006-06-26 2007-12-27 Roeber Peter J Ease of use tissue repair patch
US7892593B2 (en) 2006-06-27 2011-02-22 Ingo Werner Scheer Process for coating a substrate
WO2008016664A2 (en) 2006-08-02 2008-02-07 University Of Massachusetts Lowell Compositions and methods for treating cancer with dacarbazine nanoemulsions
KR101272976B1 (en) 2006-09-19 2013-06-10 (주)아모레퍼시픽 Coating Composition for Oral Administration
US9289279B2 (en) 2006-10-06 2016-03-22 Promethean Surgical Devices, Llc Apparatus and method for limiting surgical adhesions
US9492596B2 (en) 2006-11-06 2016-11-15 Atrium Medical Corporation Barrier layer with underlying medical device and one or more reinforcing support structures
US8906502B2 (en) 2006-12-29 2014-12-09 Ccp Composites Us Llc Organic powder useful as the replacement of mineral filler in composites
AU2008310956B2 (en) 2007-10-08 2014-08-07 Aurinia Pharmaceuticals Inc. Ophthalmic compositions comprising calcineurin inhibitors or mTOR inhibitors
AU2008346830B2 (en) 2007-12-31 2014-07-24 Acclarent, Inc. Mucosal tissue dressing and method of use
US20110045050A1 (en) 2009-08-24 2011-02-24 Atrium Medical Corporation Nanoemulsion formulations for direct delivery
EP2593141B1 (en) 2010-07-16 2018-07-04 Atrium Medical Corporation Composition and methods for altering the rate of hydrolysis of cured oil-based materials

Patent Citations (12)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5612074A (en) * 1995-12-21 1997-03-18 Leach; Robin L. Nutrient fortified food bar
US6117911A (en) * 1997-04-11 2000-09-12 Neorx Corporation Compounds and therapies for the prevention of vascular and non-vascular pathologies
US6010776A (en) * 1998-05-19 2000-01-04 3M Innovative Properties Company Microporous materials containing cross-linked oil
US6040330A (en) * 1999-01-08 2000-03-21 Bionumerik Pharmaceuticals, Inc. Pharmaceutical formulations of taxanes
US6610035B2 (en) * 1999-05-21 2003-08-26 Scimed Life Systems, Inc. Hydrophilic lubricity coating for medical devices comprising a hybrid top coat
US6761903B2 (en) * 1999-06-30 2004-07-13 Lipocine, Inc. Clear oil-containing pharmaceutical compositions containing a therapeutic agent
US20030191179A1 (en) * 1999-10-25 2003-10-09 Supergen, Inc. Methods for administration of paclitaxel
US6610068B1 (en) * 2000-09-22 2003-08-26 Scimed Life Systems, Inc. Non-flush over-the-wire catheter devices
US6833004B2 (en) * 2001-07-06 2004-12-21 Terumo Kabushiki Kaisha Stent
US20030077310A1 (en) * 2001-10-22 2003-04-24 Chandrashekhar Pathak Stent coatings containing HMG-CoA reductase inhibitors
US20030083740A1 (en) * 2001-10-22 2003-05-01 Chandrashekhar Pathak Liquid and low melting coatings for stents
US20040156879A1 (en) * 2003-01-16 2004-08-12 Muratoglu Orhun K. Methods for making oxidation resistant polymeric material

Cited By (75)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20110196340A1 (en) * 1997-08-13 2011-08-11 Boston Scientific Scimed, Inc. Loading and release of water-insoluble drugs
US20090208552A1 (en) * 2004-09-28 2009-08-20 Atrium Medical Corporation Cross-linked fatty acid-based biomaterials
US9012506B2 (en) 2004-09-28 2015-04-21 Atrium Medical Corporation Cross-linked fatty acid-based biomaterials
US20060067983A1 (en) * 2004-09-28 2006-03-30 Atrium Medical Corporation Stand-alone film and methods for making the same
US8722132B2 (en) 2004-09-28 2014-05-13 Atrium Medical Corporation Application of a coating on a medical device
US10772995B2 (en) 2004-09-28 2020-09-15 Atrium Medical Corporation Cross-linked fatty acid-based biomaterials
US9000040B2 (en) 2004-09-28 2015-04-07 Atrium Medical Corporation Cross-linked fatty acid-based biomaterials
US9682175B2 (en) 2004-09-28 2017-06-20 Atrium Medical Corporation Coating material and medical device system including same
US10016465B2 (en) 2004-09-28 2018-07-10 Atrium Medical Corporation Cured gel and method of making
US20090047414A1 (en) * 2004-09-28 2009-02-19 Atrium Medical Corporation Method and apparatus for application of a fresh coating on a medical device
US10814043B2 (en) 2004-09-28 2020-10-27 Atrium Medical Corporation Cross-linked fatty acid-based biomaterials
US8858978B2 (en) 2004-09-28 2014-10-14 Atrium Medical Corporation Heat cured gel and method of making
US11793912B2 (en) 2004-09-28 2023-10-24 Atrium Medical Corporation Cross-linked fatty acid-based biomaterials
US10869902B2 (en) 2004-09-28 2020-12-22 Atrium Medical Corporation Cured gel and method of making
US8795703B2 (en) 2004-09-28 2014-08-05 Atrium Medical Corporation Stand-alone film and methods for making the same
US20090011116A1 (en) * 2004-09-28 2009-01-08 Atrium Medical Corporation Reducing template with coating receptacle containing a medical device to be coated
US10792312B2 (en) 2004-09-28 2020-10-06 Atrium Medical Corporation Barrier layer
US9827352B2 (en) 2004-09-28 2017-11-28 Atrium Medical Corporation Cross-linked fatty acid-based biomaterials
US9801982B2 (en) 2004-09-28 2017-10-31 Atrium Medical Corporation Implantable barrier device
US20070071798A1 (en) * 2004-09-28 2007-03-29 Atrium Medical Corporation Perforated bioabsorbable oil film and methods for making the same
US9801913B2 (en) 2004-09-28 2017-10-31 Atrium Medical Corporation Barrier layer
US8263102B2 (en) 2004-09-28 2012-09-11 Atrium Medical Corporation Drug delivery coating for use with a stent
US8312836B2 (en) 2004-09-28 2012-11-20 Atrium Medical Corporation Method and apparatus for application of a fresh coating on a medical device
US8367099B2 (en) 2004-09-28 2013-02-05 Atrium Medical Corporation Perforated fatty acid films
US9278161B2 (en) 2005-09-28 2016-03-08 Atrium Medical Corporation Tissue-separating fatty acid adhesion barrier
US11083823B2 (en) 2005-09-28 2021-08-10 Atrium Medical Corporation Tissue-separating fatty acid adhesion barrier
US8124127B2 (en) 2005-10-15 2012-02-28 Atrium Medical Corporation Hydrophobic cross-linked gels for bioabsorbable drug carrier coatings
US8501229B2 (en) 2005-10-15 2013-08-06 Atrium Medical Corporation Hydrophobic cross-linked gels for bioabsorbable drug carrier coatings
US20070202149A1 (en) * 2005-10-15 2007-08-30 Atrium Medical Corporation Hydrophobic cross-linked gels for bioabsorbable drug carrier coatings
US9592324B2 (en) 2006-11-06 2017-03-14 Atrium Medical Corporation Tissue separating device with reinforced support for anchoring mechanisms
US9492596B2 (en) 2006-11-06 2016-11-15 Atrium Medical Corporation Barrier layer with underlying medical device and one or more reinforcing support structures
US20080113001A1 (en) * 2006-11-06 2008-05-15 Atrium Medical Corporation Tissue separating device with reinforced support for anchoring mechanisms
US20080109017A1 (en) * 2006-11-06 2008-05-08 Atrium Medical Corporation Barrier layer with underlying medical device and one or more reinforcing support structures
US8574627B2 (en) 2006-11-06 2013-11-05 Atrium Medical Corporation Coated surgical mesh
US20080181928A1 (en) * 2006-12-22 2008-07-31 Miv Therapeutics, Inc. Coatings for implantable medical devices for liposome delivery
US8597720B2 (en) 2007-01-21 2013-12-03 Hemoteq Ag Medical product for treating stenosis of body passages and for preventing threatening restenosis
WO2008106094A1 (en) * 2007-02-27 2008-09-04 Atrium Medical Corporation Bio-absorbable oil suspension
US20080207756A1 (en) * 2007-02-27 2008-08-28 Atrium Medical Corporation Bio-absorbable oil suspension
US9192697B2 (en) 2007-07-03 2015-11-24 Hemoteq Ag Balloon catheter for treating stenosis of body passages and for preventing threatening restenosis
US20090099651A1 (en) * 2007-10-10 2009-04-16 Miv Therapeutics, Inc. Lipid coatings for implantable medical devices
US20090137617A1 (en) * 2007-11-23 2009-05-28 Andrew Levy Use of haptoglobin genotyping in diagnosis and treatment of cardiovascular disease
WO2009144313A3 (en) * 2008-05-29 2010-07-22 Numat Biomedical S.L. Pufa covered implants
WO2009144313A2 (en) * 2008-05-29 2009-12-03 Numat Biomedical S.L. Pufa covered implants
US8821568B2 (en) 2008-05-29 2014-09-02 Numat Biomedical S.L. Implant modified with non-hydroxylated vitamin D precursors
EP3603571A1 (en) * 2008-10-10 2020-02-05 Atrium Medical Corporation Cross-linked fatty acid-based biomaterials
US20100233232A1 (en) * 2009-03-10 2010-09-16 Swanick Thomas M Fatty-acid based particles
US11166929B2 (en) 2009-03-10 2021-11-09 Atrium Medical Corporation Fatty-acid based particles
US9427423B2 (en) 2009-03-10 2016-08-30 Atrium Medical Corporation Fatty-acid based particles
US10285964B2 (en) 2009-03-10 2019-05-14 Atrium Medical Corporation Fatty-acid based particles
US11278648B2 (en) 2009-07-10 2022-03-22 Boston Scientific Scimed, Inc. Use of nanocrystals for drug delivery from a balloon
US20220211918A1 (en) * 2009-07-10 2022-07-07 Boston Scientific Scimed, Inc. Use of nanocrystals for drug delivery from a balloon
US10369256B2 (en) 2009-07-10 2019-08-06 Boston Scientific Scimed, Inc. Use of nanocrystals for drug delivery from a balloon
US20110015664A1 (en) * 2009-07-17 2011-01-20 Boston Scientific Scimed, Inc. Nucleation of Drug Delivery Balloons to Provide Improved Crystal Size and Density
US10080821B2 (en) 2009-07-17 2018-09-25 Boston Scientific Scimed, Inc. Nucleation of drug delivery balloons to provide improved crystal size and density
US10864304B2 (en) 2009-08-11 2020-12-15 Atrium Medical Corporation Anti-infective antimicrobial-containing biomaterials
US20110045050A1 (en) * 2009-08-24 2011-02-24 Atrium Medical Corporation Nanoemulsion formulations for direct delivery
US20110160645A1 (en) * 2009-12-31 2011-06-30 Boston Scientific Scimed, Inc. Cryo Activated Drug Delivery and Cutting Balloons
US10322213B2 (en) 2010-07-16 2019-06-18 Atrium Medical Corporation Compositions and methods for altering the rate of hydrolysis of cured oil-based materials
US11097035B2 (en) 2010-07-16 2021-08-24 Atrium Medical Corporation Compositions and methods for altering the rate of hydrolysis of cured oil-based materials
US8889211B2 (en) 2010-09-02 2014-11-18 Boston Scientific Scimed, Inc. Coating process for drug delivery balloons using heat-induced rewrap memory
US8669360B2 (en) 2011-08-05 2014-03-11 Boston Scientific Scimed, Inc. Methods of converting amorphous drug substance into crystalline form
US9056152B2 (en) 2011-08-25 2015-06-16 Boston Scientific Scimed, Inc. Medical device with crystalline drug coating
US9050308B2 (en) 2012-01-06 2015-06-09 Omthera Pharmaceuticals, Inc. DPA-enriched compositions of omega-3 polyunsaturated fatty acids in free acid form
US10117844B2 (en) 2012-01-06 2018-11-06 Omthera Pharmaceuticals, Inc. DPA-enriched compositions of omega-3 polyunsaturated fatty acids in free acid form
US9050309B2 (en) 2012-01-06 2015-06-09 Omthera Pharmaceuticals, Inc. DPA-enriched compositions of omega-3 polyunsaturated fatty acids in free acid form
US9492545B2 (en) 2012-05-07 2016-11-15 Omthera Pharmaceuticals Inc. Compositions of statins and omega-3 fatty acids
US9867880B2 (en) 2012-06-13 2018-01-16 Atrium Medical Corporation Cured oil-hydrogel biomaterial compositions for controlled drug delivery
US10888617B2 (en) 2012-06-13 2021-01-12 Atrium Medical Corporation Cured oil-hydrogel biomaterial compositions for controlled drug delivery
US9700657B2 (en) * 2013-07-26 2017-07-11 Heraeus Medical Gmbh Bio-absorbable composite materials containing magnesium and magnesium alloys as well as implants made of said composites
US20150032201A1 (en) * 2013-07-26 2015-01-29 Medizinische Universität Graz Bio-absorbable composite materials containing magnesium and magnesium alloys as well as implants made of said composites
US10450534B2 (en) 2016-07-19 2019-10-22 Ecolab Usa Inc. Methods and cleaning solutions for removing chewing gum and other sticky food substances
US10689602B2 (en) 2016-07-19 2020-06-23 Ecolab Usa Inc. Methods and cleaning solutions for removing chewing gum and other sticky food substances
US10918754B2 (en) 2017-03-27 2021-02-16 Regeneron Pharmaceuticals, Inc. Sterilisation method
US10905786B2 (en) 2017-03-27 2021-02-02 Regeneron Pharmaceuticals, Inc. Sterilisation method
CN113648457A (en) * 2021-07-27 2021-11-16 南方科技大学 Medical titanium implant, preparation method thereof and application of medical titanium implant

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US20060067974A1 (en) 2006-03-30
US8001922B2 (en) 2011-08-23
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