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US20060210598A1 - Resorbable structure for treating and healing of tissue defects - Google Patents

Resorbable structure for treating and healing of tissue defects
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Publication number
US20060210598A1
US20060210598A1US11/381,037US38103706AUS2006210598A1US 20060210598 A1US20060210598 A1US 20060210598A1US 38103706 AUS38103706 AUS 38103706AUS 2006210598 A1US2006210598 A1US 2006210598A1
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Prior art keywords
pores
modeling agent
agent
modeling
internal surfaces
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Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Abandoned
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US11/381,037
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Douglas Evans
Jeffrey Kelly
Todd DeWitt
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Individual
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Individual
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Priority claimed from US10/190,249external-prioritypatent/US20040006146A1/en
Application filed by IndividualfiledCriticalIndividual
Priority to US11/381,037priorityCriticalpatent/US20060210598A1/en
Publication of US20060210598A1publicationCriticalpatent/US20060210598A1/en
Abandonedlegal-statusCriticalCurrent

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Abstract

Devices and processes (e.g., improved Plasticized Melt Flow processes (PMF) or improved Phase Separation Polymer Concentration (PSPC), etc.) used to make resorbable and non-resorbable structures for treating and/or healing of tissue defects are disclosed. Among the advantages of using these improved processes are the preservation of molecular weight and the broadening of the processing conditions for temperature sensitive polymers and therapies (e.g. polylactide, polyglycolide, polycaprolactone or Cisplatin, etc.). This reduction in processing temperature, pressure and time can help to preserve the molecular weight and/or integrity of the final product or any additive incorporated therein. Additionally, pore size and shape tailoring can increase the osteoconductive nature of the device.

Description

Claims (31)

1. A porous polymeric device, said device being implantable into a body of a living being to treat tissue or defects therein; said device comprising a polymer matrix, pores, and at least one modeling agent; wherein said device comprises a plurality of internal surfaces that define a plurality of said pores, wherein at least said pores are arranged substantially homogeneously throughout said device, wherein said pores are of irregular shapes due to interactions with said at least one modeling agent during processing, and further wherein substantially each of said internal surfaces has expanded at least partially around an external surface of at least one modeling agent, thereby imparting an inward-directed textured or roughened face to said internal surfaces, and wherein said modeling agent is at least partially exposed to said pores, and further wherein said modeling agent chemically reacts upon exposure of said pores to a fluid.
8. A porous polymeric device, said device being implantable into a body of a living being to treat tissue or defects therein; said device comprising a polymer matrix, pores, and at least one modeling agent; wherein said device comprises a plurality of internal surfaces that define a plurality of said pores, said device being manufactured with at least one decompression step; wherein said pores are of irregular shapes due to interactions with said at least one modeling agent during said decompression step, and specifically wherein during decompression said pores grow in size to an extent where said internal surfaces grow around said at least one modeling agent, thereby modifying the shape of said internal surfaces and causing said modeling agent to chemically react upon exposure of said pores to a fluid.
17. A porous polymeric device, said device being implantable into a body of a living being to treat tissue or defects therein; said device comprising a polymer matrix, pores, and at least one modeling agent, and being manufactured with at least one decompression step to expand a pore induction fluid provided to said polymer matrix, thereby shaping at least some of said polymer matrix into the form of walls that define said pores, wherein at least a portion of said pores are induced by expansion of said pore induction fluid during said decompression step, with said pores further being of irregular shape due to interactions with said at least one modeling agent during said decompression step, wherein said modeling agent chemically reacts with a bodily fluid upon exposure to said fluid, and further wherein during decompression said pores grow in size to an extent where said polymeric pore walls stretch around said modeling agent that is or that becomes constrained in its ability to relocate in response to the advancing polymeric pore wall, and thereby provides a textured or roughened face to said pore walls.
25. A porous polymeric device, said device being implantable into a body of a living being to treat tissue or defects therein; said device comprising a polymer matrix, pores, and at least one modeling agent; wherein said device comprises a plurality of internal surfaces that define a plurality of said pores, said device being manufactured by a process comprising at least one decompression step, wherein at least said pores are arranged substantially homogeneously throughout said device, wherein said pores are of irregular shapes due to interactions with said at least one modeling agent during said decompression step, and further wherein during decompression said pores grow in size to an extent where said internal surfaces attempt to grow around said at least one modeling agent that is in a constrained condition, and do in fact push at least slightly beyond a boundary defined by external surfaces of said modeling agent, thereby modifying the shape of said internal surfaces by creating inwardly-directed protrusions thereon, and wherein still further at least a portion of said internal surfaces are defined by at least a portion of said external surfaces of said modeling agent, thereby imparting an inward-directed textured or roughened face to said internal surfaces, and wherein said modeling agent is at least partially exposed to said pores, and further wherein said modeling agent dissolves upon exposure of said pores to a fluid.
26. A porous polymeric device, said device being implantable into a body of a living being to treat tissue or defects therein; said device comprising a polymer matrix, pores, and at least one leachable modeling agent; wherein said device comprises a plurality of internal surfaces that define a plurality of said pores, wherein at least said pores are arranged substantially homogeneously throughout said device, wherein said pores are of irregular shapes due to interactions with said at least one modeling agent during processing, and further wherein substantially each of said internal surfaces has expanded at least partially around an external surface of at least one modeling agent, thereby imparting an inward-directed textured or roughened face to said internal surfaces, and wherein said leachable modeling agent is at least partially exposed to said pores, and further wherein said leachable modeling agent is capable of being leached from said device upon exposure of said pores to a fluid.
US11/381,0372002-07-062006-05-01Resorbable structure for treating and healing of tissue defectsAbandonedUS20060210598A1 (en)

Priority Applications (1)

Application NumberPriority DateFiling DateTitle
US11/381,037US20060210598A1 (en)2002-07-062006-05-01Resorbable structure for treating and healing of tissue defects

Applications Claiming Priority (3)

Application NumberPriority DateFiling DateTitle
US10/190,249US20040006146A1 (en)2002-07-062002-07-06Resorbable structure for treating and healing of tissue defects
US10/222,593US7049348B2 (en)2002-07-062002-08-15Resorbable structure for treating and healing of tissue defects
US11/381,037US20060210598A1 (en)2002-07-062006-05-01Resorbable structure for treating and healing of tissue defects

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US10/222,593ContinuationUS7049348B2 (en)2002-07-062002-08-15Resorbable structure for treating and healing of tissue defects

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US20060210598A1true US20060210598A1 (en)2006-09-21

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US10/222,593Expired - Fee RelatedUS7049348B2 (en)2002-07-062002-08-15Resorbable structure for treating and healing of tissue defects
US11/381,037AbandonedUS20060210598A1 (en)2002-07-062006-05-01Resorbable structure for treating and healing of tissue defects

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US10/222,593Expired - Fee RelatedUS7049348B2 (en)2002-07-062002-08-15Resorbable structure for treating and healing of tissue defects

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US (2)US7049348B2 (en)
EP (1)EP1521602A1 (en)
AU (1)AU2003280962A1 (en)
WO (1)WO2004006973A1 (en)

Cited By (9)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US20060276562A1 (en)*2005-06-042006-12-07Kyeong-Jun ParkComposite materials for bone defect filling and bone replacement
US20080206297A1 (en)*2007-02-282008-08-28Roeder Ryan KPorous composite biomaterials and related methods
US7815826B2 (en)2004-05-122010-10-19Massachusetts Institute Of TechnologyManufacturing process, such as three-dimensional printing, including solvent vapor filming and the like
US20110055687A1 (en)*2009-08-252011-03-03International Business Machines CorporationGenerating formatted documents
US8133553B2 (en)2007-06-182012-03-13Zimmer, Inc.Process for forming a ceramic layer
US8309521B2 (en)2007-06-192012-11-13Zimmer, Inc.Spacer with a coating thereon for use with an implant device
US8541028B2 (en)2004-08-042013-09-24Evonik CorporationMethods for manufacturing delivery devices and devices thereof
US8602290B2 (en)2007-10-102013-12-10Zimmer, Inc.Method for bonding a tantalum structure to a cobalt-alloy substrate
US8728528B2 (en)2007-12-202014-05-20Evonik CorporationProcess for preparing microparticles having a low residual solvent volume

Families Citing this family (39)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US20030008396A1 (en)*1999-03-172003-01-09Ku David N.Poly(vinyl alcohol) hydrogel
US7959636B2 (en)*2002-08-152011-06-14Arthrex, Inc.Osteochondral repair using plug fashioned from whole distal femur or condyle formed of hydrogel composition
US7931695B2 (en)2003-07-152011-04-26Kensey Nash CorporationCompliant osteosynthesis fixation plate
US6987071B1 (en)*2003-11-212006-01-17Nanosolar, Inc.Solvent vapor infiltration of organic materials into nanostructures
US7524514B2 (en)2003-12-012009-04-28Tissue Engineering Consultants, Inc.Biomimetic composition reinforced by a polyelectrolytic complex of hyaluronic acid and chitosan
EP1786485A4 (en)2004-02-062012-05-30Georgia Tech Res InstSurface directed cellular attachment
WO2005077304A1 (en)2004-02-062005-08-25Georgia Tech Research CorporationLoad bearing biocompatible device
US8293890B2 (en)*2004-04-302012-10-23Advanced Cardiovascular Systems, Inc.Hyaluronic acid based copolymers
US20050278025A1 (en)*2004-06-102005-12-15Salumedica LlcMeniscus prosthesis
US20060034884A1 (en)*2004-08-102006-02-16Stenzel Eric BCoated medical device having an increased coating surface area
WO2006044832A2 (en)*2004-10-152006-04-27The Cleveland Clinic FoundationDevice for tissue engineering
US8221824B2 (en)*2005-02-032012-07-17Boston Scientific Scimed, Inc.Deforming surface of drug eluting coating to alter drug release profile of a medical device
AU2007207495A1 (en)*2006-01-192007-07-26Warsaw Orthopedic, Inc.Porous osteoimplant
EP2010104B1 (en)*2006-04-252018-09-05Teleflex Medical IncorporatedCalcium phosphate polymer composite and method
US20080167682A1 (en)*2007-01-092008-07-10Cardia, Inc.Bioabsorbable occlusion device
US10278947B2 (en)2007-02-282019-05-07Orthopeutics, L.P.Crosslinker enhanced repair of connective tissues
US20080306582A1 (en)*2007-06-052008-12-11Yunbing WangImplantable medical devices with elastomeric copolymer coatings
US7998380B2 (en)*2007-07-132011-08-16Wisconsin Alumni Research FoundationMethod of fabricating a tissue engineering scaffold
US8124601B2 (en)*2007-11-212012-02-28Bristol-Myers Squibb CompanyCompounds for the treatment of Hepatitis C
WO2009124148A1 (en)*2008-04-042009-10-08Curaseal, Inc.Implantable fistula closure device
EP2330985A4 (en)2008-09-042015-11-18Curaseal IncInflatable devices for enteric fistula treatment
US8298584B2 (en)*2008-12-302012-10-30Collagen Matrix, Inc.Biopolymeric membrane for wound protection and repair
CA2775077C (en)*2009-09-222018-05-01Evonik Degussa CorporationImplant devices having varying bioactive agent loading configurations
CN102573860A (en)2009-10-022012-07-11巴克斯特国际公司Hematopoietic stem cells for use in the treatment of a kidney injury
WO2011088157A2 (en)*2010-01-122011-07-21Medtronic, Inc.Particle/polyurethane composites and methods thereof
US8465582B2 (en)*2010-03-162013-06-18Taipei Medical UniversityProcess for producing inorganic interconnected 3D open cell bone substitutes
US8691126B2 (en)2011-01-182014-04-08Wisconsin Alumni Research FoundationMethod of fabricating an injection molded component
CA2837303C (en)2011-05-262019-08-20Cartiva, Inc.Tapered joint implant and related tools
JP6122424B2 (en)2011-06-162017-04-26キュラシール インコーポレイテッド Device for fistula treatment and related method
CN107137114A (en)2011-06-172017-09-08库拉希尔公司The device and method treated for fistula
EP2817014A2 (en)2012-02-212014-12-31Baxter International IncPharmaceutical composition comprising cd34+ cells
US9630346B2 (en)2013-03-052017-04-25Wisconsin Alumni Research FoundationMethod of fabricating an injection molded component
EP3052083A4 (en)2013-09-302017-05-03Bioactive Regenerative Therapeutics, Inc.Biomimetic hybrid gel compositions and methods of use
US9555564B2 (en)2013-11-112017-01-31Wisconsin Alumni Research FoundationMethod of fabricating a foamed, injection molded component with improved ductility and toughness
CA2977625A1 (en)2014-12-292016-07-07Bioventus, LlcSystems and methods for improved delivery of osteoinductive molecules in bone repair
US9907663B2 (en)2015-03-312018-03-06Cartiva, Inc.Hydrogel implants with porous materials and methods
US10758374B2 (en)2015-03-312020-09-01Cartiva, Inc.Carpometacarpal (CMC) implants and methods
EP3282961A4 (en)2015-04-142018-12-05Cartiva, Inc.Tooling for creating tapered opening in tissue and related methods
US11331191B2 (en)2015-08-122022-05-17Howmedica Osteonics Corp.Bioactive soft tissue implant and methods of manufacture and use thereof

Citations (28)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US3491032A (en)*1964-09-021970-01-20Dow Chemical CoHigh density polyolefin foams
US4199864A (en)*1975-12-221980-04-29Arthur AshmanEndosseous plastic implant method
US4636526A (en)*1985-02-191987-01-13The Dow Chemical CompanyComposites of unsintered calcium phosphates and synthetic biodegradable polymers useful as hard tissue prosthetics
US4714469A (en)*1987-02-261987-12-22Pfizer Hospital Products Group, Inc.Spinal implant
US4863476A (en)*1986-08-291989-09-05Shepperd John A NSpinal implant
US4906423A (en)*1987-10-231990-03-06Dow Corning WrightMethods for forming porous-surfaced polymeric bodies
US5071437A (en)*1989-02-151991-12-10Acromed CorporationArtificial disc
US5133755A (en)*1986-01-281992-07-28Thm Biomedical, Inc.Method and apparatus for diodegradable, osteogenic, bone graft substitute device
US5399597A (en)*1992-11-021995-03-21Ferro CorporationMethod of preparing coating materials
US5489308A (en)*1989-07-061996-02-06Spine-Tech, Inc.Spinal implant
US5502082A (en)*1991-12-201996-03-26Alliedsignal Inc.Low density materials having good compression strength and articles formed therefrom
US5543156A (en)*1991-01-091996-08-06Alza CorporationBioerodible devices and compositions for diffusional release of agents
US5698163A (en)*1995-05-101997-12-16Ferro CorporationControl system for processes using supercritical fluids
US5766618A (en)*1994-04-011998-06-16Massachusetts Institute Of TechnologyPolymeric-hydroxyapatite bone composite
US5939323A (en)*1996-05-281999-08-17Brown UniversityHyaluronan based biodegradable scaffolds for tissue repair
US5993747A (en)*1997-06-251999-11-30Ferro CorporationMixing system for processes using supercritical fluids
US6007580A (en)*1995-06-131999-12-28Bionx Implants OyJoint prosthesis
US6054103A (en)*1997-06-252000-04-25Ferro CorporationMixing system for processes using supercritical fluids
US6169122B1 (en)*1997-12-192001-01-02Trexel, Inc.Microcellular articles and methods of their production
US6231942B1 (en)*1998-01-212001-05-15Trexel, Inc.Method and apparatus for microcellular polypropylene extrusion, and polypropylene articles produced thereby
US6306424B1 (en)*1999-06-302001-10-23Ethicon, Inc.Foam composite for the repair or regeneration of tissue
US6355699B1 (en)*1999-06-302002-03-12Ethicon, Inc.Process for manufacturing biomedical foams
US6395168B1 (en)*1999-11-192002-05-28Terra Group, Corp.Reticulated liquid treatment device
US6395293B2 (en)*1989-07-242002-05-28Atrix LaboratoriesBiodegradable implant precursor
US6506213B1 (en)*2000-09-082003-01-14Ferro CorporationManufacturing orthopedic parts using supercritical fluid processing techniques
US6521258B1 (en)*2000-09-082003-02-18Ferro CorporationPolymer matrices prepared by supercritical fluid processing techniques
US6579532B1 (en)*2000-09-082003-06-17Ferro CorporationOrthopedic mixtures prepared by supercritical fluid processing techniques
US6689608B1 (en)*1993-02-012004-02-10Massachusetts Institute Of TechnologyPorous biodegradable polymeric materials for cell transplantation

Family Cites Families (3)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
GB8928250D0 (en)1989-12-141990-02-21Erba Carlo SpaUse of supercritical fluids to obtain porous sponges of biodegradable polymers
GB0015430D0 (en)2000-06-242000-08-16Victrex Mfg LtdBio-compatible polymeric materials
US6599323B2 (en)2000-12-212003-07-29Ethicon, Inc.Reinforced tissue implants and methods of manufacture and use

Patent Citations (28)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US3491032A (en)*1964-09-021970-01-20Dow Chemical CoHigh density polyolefin foams
US4199864A (en)*1975-12-221980-04-29Arthur AshmanEndosseous plastic implant method
US4636526A (en)*1985-02-191987-01-13The Dow Chemical CompanyComposites of unsintered calcium phosphates and synthetic biodegradable polymers useful as hard tissue prosthetics
US5133755A (en)*1986-01-281992-07-28Thm Biomedical, Inc.Method and apparatus for diodegradable, osteogenic, bone graft substitute device
US4863476A (en)*1986-08-291989-09-05Shepperd John A NSpinal implant
US4714469A (en)*1987-02-261987-12-22Pfizer Hospital Products Group, Inc.Spinal implant
US4906423A (en)*1987-10-231990-03-06Dow Corning WrightMethods for forming porous-surfaced polymeric bodies
US5071437A (en)*1989-02-151991-12-10Acromed CorporationArtificial disc
US5489308A (en)*1989-07-061996-02-06Spine-Tech, Inc.Spinal implant
US6395293B2 (en)*1989-07-242002-05-28Atrix LaboratoriesBiodegradable implant precursor
US5543156A (en)*1991-01-091996-08-06Alza CorporationBioerodible devices and compositions for diffusional release of agents
US5502082A (en)*1991-12-201996-03-26Alliedsignal Inc.Low density materials having good compression strength and articles formed therefrom
US5399597A (en)*1992-11-021995-03-21Ferro CorporationMethod of preparing coating materials
US6689608B1 (en)*1993-02-012004-02-10Massachusetts Institute Of TechnologyPorous biodegradable polymeric materials for cell transplantation
US5766618A (en)*1994-04-011998-06-16Massachusetts Institute Of TechnologyPolymeric-hydroxyapatite bone composite
US5698163A (en)*1995-05-101997-12-16Ferro CorporationControl system for processes using supercritical fluids
US6007580A (en)*1995-06-131999-12-28Bionx Implants OyJoint prosthesis
US5939323A (en)*1996-05-281999-08-17Brown UniversityHyaluronan based biodegradable scaffolds for tissue repair
US6054103A (en)*1997-06-252000-04-25Ferro CorporationMixing system for processes using supercritical fluids
US5993747A (en)*1997-06-251999-11-30Ferro CorporationMixing system for processes using supercritical fluids
US6169122B1 (en)*1997-12-192001-01-02Trexel, Inc.Microcellular articles and methods of their production
US6231942B1 (en)*1998-01-212001-05-15Trexel, Inc.Method and apparatus for microcellular polypropylene extrusion, and polypropylene articles produced thereby
US6306424B1 (en)*1999-06-302001-10-23Ethicon, Inc.Foam composite for the repair or regeneration of tissue
US6355699B1 (en)*1999-06-302002-03-12Ethicon, Inc.Process for manufacturing biomedical foams
US6395168B1 (en)*1999-11-192002-05-28Terra Group, Corp.Reticulated liquid treatment device
US6506213B1 (en)*2000-09-082003-01-14Ferro CorporationManufacturing orthopedic parts using supercritical fluid processing techniques
US6521258B1 (en)*2000-09-082003-02-18Ferro CorporationPolymer matrices prepared by supercritical fluid processing techniques
US6579532B1 (en)*2000-09-082003-06-17Ferro CorporationOrthopedic mixtures prepared by supercritical fluid processing techniques

Cited By (12)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US7815826B2 (en)2004-05-122010-10-19Massachusetts Institute Of TechnologyManufacturing process, such as three-dimensional printing, including solvent vapor filming and the like
US8541028B2 (en)2004-08-042013-09-24Evonik CorporationMethods for manufacturing delivery devices and devices thereof
US20060276562A1 (en)*2005-06-042006-12-07Kyeong-Jun ParkComposite materials for bone defect filling and bone replacement
US7449498B2 (en)*2005-06-042008-11-11Yesbio Co., Ltd.Composite materials for bone defect filling and bone replacement
US20080206297A1 (en)*2007-02-282008-08-28Roeder Ryan KPorous composite biomaterials and related methods
US8133553B2 (en)2007-06-182012-03-13Zimmer, Inc.Process for forming a ceramic layer
US8663337B2 (en)2007-06-182014-03-04Zimmer, Inc.Process for forming a ceramic layer
US8309521B2 (en)2007-06-192012-11-13Zimmer, Inc.Spacer with a coating thereon for use with an implant device
US8602290B2 (en)2007-10-102013-12-10Zimmer, Inc.Method for bonding a tantalum structure to a cobalt-alloy substrate
US8608049B2 (en)2007-10-102013-12-17Zimmer, Inc.Method for bonding a tantalum structure to a cobalt-alloy substrate
US8728528B2 (en)2007-12-202014-05-20Evonik CorporationProcess for preparing microparticles having a low residual solvent volume
US20110055687A1 (en)*2009-08-252011-03-03International Business Machines CorporationGenerating formatted documents

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Publication numberPublication date
WO2004006973A1 (en)2004-01-22
US20040010048A1 (en)2004-01-15
US7049348B2 (en)2006-05-23
AU2003280962A1 (en)2004-02-02
EP1521602A1 (en)2005-04-13

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