COMPOSITE IMPLANT FOR TOTAL MENISCUS RECONSTRUCTION
20220401220 · 2022-12-22
Assignee
Inventors
Cpc classification
A61F2002/4495
HUMAN NECESSITIES
A61F2/3872
HUMAN NECESSITIES
A61F2/30749
HUMAN NECESSITIES
A61L27/425
HUMAN NECESSITIES
A61F2002/30677
HUMAN NECESSITIES
A61L27/58
HUMAN NECESSITIES
A61F2002/30062
HUMAN NECESSITIES
A61F2002/30766
HUMAN NECESSITIES
C08L89/06
CHEMISTRY; METALLURGY
A61L27/3608
HUMAN NECESSITIES
C08L89/06
CHEMISTRY; METALLURGY
A61F2002/30131
HUMAN NECESSITIES
A61F2/30965
HUMAN NECESSITIES
A61L27/425
HUMAN NECESSITIES
International classification
Abstract
Artificial meniscal scaffolds characterized by a composite of circumferential polymer fiber network and orthogonal polymer fiber network embedded in an arcuate bioresorbable matrix comprised of collagen and hyaluronic acid. The orthogonal polymer fiber network prevents separation of the circumferential polymer fiber networks. The polymer fiber networks convert axial compressive forces on the scaffolds to tensile loads on the circumferential polymer fibers. The composite scaffold can be anchored to bone by novel anchoring components that protect the polymer fibers and ensure immediate securement of the artificial meniscal scaffold to bone.
Claims
1-29. (canceled)
30. An artificial meniscal scaffold comprising: an arcuate bioresorbable matrix; a network of circumferential bioresorbable fibers embedded in said matrix; and a network of orthogonal bioresorbable fibers embedded in said matrix to prevent separation of said circumferential fiber network; wherein the bioresorbable circumferential fibers and the bioresorbable orthogonal fibers have a three-dimensional shape and geometry which is substantially the same as the three-dimensional shape and geometry of the matrix; wherein the scaffold is comprised of an anterior end, a posterior end, and a middle section therebetween defining a curved path between said anterior and posterior ends; wherein the network of circumferential bioresorbable fibers extends between said anterior and posterior ends along the path of said curve and exits the anterior and posterior ends of the scaffold to form respective anterior and posterior attachment segments; wherein the anterior and posterior attachment segments have a proximal region, a distal region, a length, and an exterior surface; and, wherein the exterior surface of at least one of said anterior and posterior attachment segments is coated with a polymer.
31. The artificial meniscal scaffold of claim 30, wherein the polymer is resorbable.
32. The artificial meniscal scaffold of claim 30, wherein the length of the anterior attachment segment is less than the length of the posterior attachment segment.
33. The artificial meniscal scaffold of claim 30, wherein the matrix is formed from a material selected from the group consisting of proteins, proteoglycans, biocompatible synthetic polymers and combinations thereof.
34. The artificial meniscal scaffold of claim 33, wherein the protein is collagen.
35. The artificial meniscal scaffold of claim 34, wherein the collagen is cross-linked.
36. The artificial meniscal scaffold of claim 30, wherein the matrix is comprised of a radiopaque material containing iodine, barium, tantalum, bismuth, or gold.
37. An artificial meniscal scaffold comprising: an arcuate bioresorbable matrix; a network of circumferential bioresorbable fibers embedded in said matrix; and a network of orthogonal bioresorbable fibers embedded in said matrix to prevent separation of said circumferential fiber network; wherein the bioresorbable circumferential fibers and the bioresorbable orthogonal fibers have a three-dimensional shape and geometry which is substantially the same as the three-dimensional shape and geometry of the matrix; wherein the scaffold is comprised of an anterior end, a posterior end, and a middle section therebetween defining a curved path between said anterior and posterior ends; wherein the network of circumferential bioresorbable fibers extends between said anterior and posterior ends along the path of said curve and exits the anterior and posterior ends of the scaffold to form respective anterior and posterior attachment segments; wherein the anterior and posterior attachment segments have a proximal region, a distal region, a length, and an exterior surface; and, wherein a polymeric fiber is wound around at least a portion of the exterior surface of at least one of the anterior and posterior attachment segments.
38. The artificial meniscal scaffold of claim 37, wherein the polymeric fiber wound around at least a portion of the exterior surface of at least one of the anterior and posterior attachment segments is resorbable.
39. The artificial meniscal scaffold of claim 37, wherein the length of the anterior attachment segment is less than the length of the posterior attachment segment.
40. The artificial meniscal scaffold of claim 37, wherein the matrix is formed from a material selected from the group consisting of proteins, proteoglycans, biocompatible synthetic polymers and combinations thereof.
41. An artificial meniscal scaffold comprising: an arcuate bioresorbable matrix; a network of circumferential bioresorbable fibers embedded in said matrix; and a network of orthogonal bioresorbable fibers embedded in said matrix to prevent separation of said circumferential fiber network; wherein the bioresorbable circumferential fibers and the bioresorbable orthogonal fibers have a three-dimensional shape and geometry which is substantially the same as the three-dimensional shape and geometry of the matrix; wherein the scaffold is comprised of an anterior end, a posterior end, and a middle section therebetween defining a curved path between said anterior and posterior ends; wherein the network of circumferential bioresorbable fibers extends between said anterior and posterior ends along the path of said curve and exits the anterior and posterior ends of the scaffold to form respective anterior and posterior attachment segments; wherein the anterior and posterior attachment segments have a proximal region, a distal region, a length, and an exterior surface; and, wherein at least a portion of the exterior surface of at least one of said anterior and posterior attachment segments is covered with a polymeric sleeve.
42. The artificial meniscal scaffold of claim 41, wherein the polymeric sleeve is resorbable.
43. The artificial meniscal scaffold of claim 41, wherein the length of the anterior attachment segment is less than the length of the posterior attachment segment.
44. The artificial meniscal scaffold of claim 30, wherein the matrix is formed from a material selected from the group consisting of proteins, proteoglycans, biocompatible synthetic polymers and combinations thereof.
45. An artificial meniscal scaffold comprising: an arcuate bioresorbable matrix; a network of circumferential bioresorbable fibers embedded in said matrix; and a network of orthogonal bioresorbable fibers embedded in said matrix to prevent separation of said circumferential fiber network; wherein the bioresorbable circumferential fibers and the bioresorbable orthogonal fibers have a three-dimensional shape and geometry which is substantially the same as the three-dimensional shape and geometry of the matrix; wherein the scaffold is comprised of an anterior end, a posterior end, and a middle section therebetween defining a curved path between said anterior and posterior ends; wherein the network of circumferential bioresorbable fibers extends between said anterior and posterior ends along the path of said curve and exits the anterior and posterior ends of the scaffold to form respective anterior and posterior attachment segments; wherein the anterior and posterior attachment segments have a proximal region, a distal region, a length, and an exterior surface; and, wherein a polymeric fiber is wound around at least a portion of the exterior surface of the middle section.
46. The artificial meniscal scaffold of claim 45, wherein the matrix is comprised of a radiopaque material containing iodine, barium, tantalum, bismuth, or gold.
47. The artificial meniscal scaffold of claim 45, wherein the matrix is comprised of platelet rich plasma or mammalian cells.
48. The artificial meniscal scaffold of claim 45, wherein the matrix is comprised of an antimicrobial agent, antibiotic, or anti-fungal agent.
49. The artificial meniscal scaffold of claim 45, wherein the matrix is comprised of bone derivatives or calcium-phosphate compounds.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0019] One aspect of the artificial meniscal scaffold 1 comprising a reinforcing network of circumferential polymeric fibers 23 and orthogonal polymeric fibers 14 embedded in an arcuate bioresorbable matrix 10 is shown in
[0020] The attachment segments 121 and 122 are configured to traverse the entire length of a bone tunnel (not shown). This allows for a fixation method wherein the attachment segments 121 and 122 extend through the bone tunnel and then are fixed to the tibia using interference screws (not shown) or the like. This provides a more rigid attachment. However, use of interference screws may potentially damage the extension fibers 23 that extend through the tapering horn section 123 and into the attachment segments 121 and 122. The invention described and shown herein reduces or eliminates the chance that damage to these fibers occurs.
[0021] In one embodiment, the exterior surface S of at least one of the anterior attachment segments 121 or posterior attachment segment 122 has a coating 130 to protect the fibers 23. In one embodiment, the coating 130 is a polymer that is applied by a spraying process. In one embodiment, the coating is applied by dipping the attachment segments 121 and 122 in a solution containing the polymer, removing it from the solution, and allowing it to dry under controlled conditions of humidity and temperature. In one embodiment the coating 130 is a resorbable polymer selected from the group consisting of poly(lactic acid) and polyglycolic acid, poly(4-hydroxybutyrate), polydioxanes, polyoxalates, polylactones, polyester hydrogels, and co-polymers of polyglycolide and polylactide. In one embodiment, the thickness of the coating 130 is greater than 0.10 mm and less than 5.0 mm. In one embodiment, the polymeric coating 130 is coated with collagen. In one embodiment of the artificial meniscal scaffold 20 shown in
[0022] In one embodiment of the artificial meniscal scaffold 30 shown in
[0023] In one embodiment of the artificial meniscal scaffold 40 shown in
[0024] In one embodiment of the artificial meniscal scaffold 50 shown in
[0025] In one embodiment of the artificial meniscal scaffold 60 shown in
[0026] In one embodiment of the artificial meniscal scaffold, the anchoring component on one attachment segment is different than the anchoring component on the other attachment segment. For example, the anterior attachment segment may be coupled to a threaded anchoring component like that shown in
[0027] Referring back to
[0028] Post-operative imaging and assessment of the artificial meniscal scaffold is critical to both surgeons and patients. In one embodiment of the artificial meniscal scaffold, the arcuate bioresorbable matrix contains a radiopaque material such as iodine, barium, tantalum, bismuth, or gold. In one embodiment of the artificial meniscal scaffold, the arcuate bioresorbable matrix contains platelet rich plasma or mammalian cells. In one embodiment of the artificial meniscal scaffold, the arcuate bioresorbable matrix contains an antimicrobial agent, antibiotic, or anti-fungal agent. In one embodiment of the artificial meniscal scaffold, the arcuate bioresorbable matrix contains bone derivatives or calcium-phosphate compounds. In one embodiment, the matrix is comprised of bone derivatives from an allograft, autograft or xenograft source. In one embodiment, the calcium phosphate compound is hydroxyapatite or tricalcium phosphate. In one embodiment, the tricalcium-phosphate compound is beta-tricalcium-phosphate.
[0029] Although the invention herein has been described with reference to particular embodiments, it is to be understood that these embodiments are merely illustrative of the principles and applications of the present invention. It is therefore to be understood that numerous modifications may be made to the illustrative embodiments and that other arrangements may be devised without departing from the spirit and scope of the present invention which is defined by the following claims.