Claims
- 1. A method for manufacturing a surface demineralized osteoinductive osteoimplant having at least one demineralized zone and at least one non-demineralized zone, the method comprising:
demineralizing at least part of at least one surface of a monolithic section of a bone to a depth of at least about 100 microns; and, configuring the monolithic section of bone.
- 2. The method of claim 1 wherein, the step of configuring comprises at least one operation selected from the group consisting of cutting, shaving, slicing, milling, grinding, drilling, molding, shaping, turning, chiseling, dissolving, and etching.
- 3. The method of claim 1 wherein, the step of configuring is performed before the step of demineralizing.
- 4. The method of claim 1 wherein, the step of configuring is performed after the step of demineralizing.
- 5. The method of claim 1 further comprising the step of masking at least one region of the bone prior to demineralization.
- 6. The method of claim 4 wherein, the step of configuring comprises the step of providing a mineralized zone on a surface of the implant.
- 7. The method of claim 1 wherein, the bone is selected from the group consisting of monolithic cortical bone, monolithic corticocancellous bone, monolithic composite bone, and monolithic assembled bone.
- 8. The method of claim 1 wherein, the step of configuring comprises introducing into the osteoimplant at least one opening selected from the group consisting of small pores, canals, and passageways.
- 9. The method of claim 1 wherein, the step of demineralizing comprises demineralizing only those surfaces intended to contact a recipient's bone.
- 10. The method of claim 1 wherein, the step of demineralizing is continued until the depth of demineralization of the surface is between 100 to about 5000 microns deep.
- 11. The method of claim 1 wherein, the step of demineralizing is continued until the depth of demineralization of the surface is between about 150 to about 2000 microns deep.
- 12. The method of claim 1 wherein, the step of demineralizing is continued until the depth of demineralization of the surface is between about 200 to about 1000 microns deep.
- 13. The method of claim 1 wherein, the non-demineralized zone of the implant is configured to reversibly engage with an insertion instrument.
- 14. The method of claim 1 wherein, the demineralized zone comprises a demineralized zone having a geometry selected from the group consisting of concave surfaces, convex surfaces, stepped surfaces, tapered surfaces, flat surfaces, serrated surfaces, cylindrical dowels, cortical rings, wedges, blocks, screws, pins and combinations thereof.
- 15. The method of claim 1 wherein the non-demineralized zone comprises a non-demineralized zone having a geometry selected from the group consisting of threaded holes, receiving holes, hex shaped recesses, concave surfaces, convex surfaces, stepped surfaces, tapered surfaces, flat surfaces, serrated surfaces, cylindrical dowels, cortical rings, wedges, blocks, screws, pins and combinations thereof.
- 16. The method of claim 1 wherein, the bone is selected from the group consisting of autogenic bone, allogenic bone, xenogenic bone, transgenic bone, composites thereof, and assemblies thereof.
- 17. The method of claim 1 wherein, the bone is selected from the group consisting of diaphysis of a femur, diaphysis of a tibia, diaphysis of a fibula, diaphysis of a humerus, diaphysis of a ulna, diaphysis of a radius, metaphysis of a femur, metaphysis of a tibia, metaphysis of a fibula, metaphysis of a ulna, metaphysis of a radius, phalanges, composites thereof, and assemblies thereof.
- 18. The method of clam 17 wherein the bone possess a total surface area of between about 100 mm2 and about 10,000 mm2.
- 19. The method of clam 17 wherein, the bone possess a total surface area of between about 250 mm2 and about 8000 mm2.
- 20. The method of clam 17 wherein, the bone possess a total surface area of between about 300 mm2 and about 7600 mm 2.
- 21. An osteoimplant produced according to the method of claim 1.
- 22. A surface demineralized osteoinductive osteoimplant comprising monolithic bone, the osteoimplant having at least one outer surface possessing at least one demineralized zone at least about 100 microns thick and a non-demineralized zone, wherein the non-demineralized zone is configured to reversibly engage with an insertion device.
- 23. The osteoimplant of claim 22 wherein, the non-demineralized zone is configured to have a shape selected from the group consisting of threaded holes, receiving holes, hex shaped recesses, concave surfaces, convex surfaces, stepped surfaces, tapered surfaces, flat surfaces, serrated surfaces, wedges, blocks, screws, pins and combinations thereof.
- 24. The osteoimplant of claim 22 wherein, the non-demineralized zone is provided by masking a region of the bone defining the non-demineralized zone prior to demineralization.
- 25. The osteoimplant of claim 22 wherein, the non-demineralized zone is provided by configuring at least a portion of the demineralized zone to expose the non-demineralized zone.
- 26. The osteoimplant of claim 25 further comprising a non-demineralized core region.
- 27. The osteoimplant of claim 22 wherein, the bone is selected from the group consisting of autogenic bone, allogenic bone, xenogenic bone, transgenic bone, composites thereof, and assemblies thereof.
- 28. A load-bearing vertebral interbody fusion device comprising a monolithic section of bone configured to span a space selected from the group consisting of an intervertebral space between adjacent vertebrae and a space between non-adjacent vertebrae, the bone having at least one outer surface with at least one demineralized zone for contacting the adjacent vertebra and a non-demineralized zone, the non-demineralized zone being configured to maintain relatively close tolerances with an insertion instrument.
- 29. The fusion device of claim 28 wherein, the non-demineralized zone is configured to have a shape selected from the group consisting of threaded holes, receiving holes, hex shaped recesses, concave surfaces, convex surfaces, stepped surfaces, tapered surfaces, flat surfaces, serrated surfaces, wedges, blocks, screws, pins and combinations thereof.
- 30. The fusion device of claim 28 wherein, the demineralized zone of the outer surface of the bone is at least about 100 microns thick.
- 31. A method for promoting joint fusion in an animal in need thereof, the method comprising:
implanting in the animal an osteoinductive osteoimplant made of bone having an outer surface possessing at least one demineralized zone, the demineralized zone of the outer surface of the bone being at least about 100 microns thick, the osteoimplant having at least one non-demineralized zone provided by configuring at least a portion of the demineralized zone.
- 32. The method of claim 31 wherein, the demineralized zone comprises a demineralized zone having a geometry selected from the group consisting of concave surfaces, convex surfaces, stepped surfaces, tapered surfaces, flat surfaces, serrated surfaces, cylindrical dowels, cortical rings, wedges, blocks, screws, pins and combinations thereof.
- 33. The method of claim 31 wherein, the non-demineralized zone comprises a non-demineralized zone having a geometry selected from the group consisting of threaded holes, receiving holes, hex shaped recesses, concave surfaces, convex surfaces, stepped surfaces, tapered surfaces, flat surfaces, serrated surfaces, cylindrical dowels, cortical rings, wedges, blocks, screws, pins and combinations thereof.
- 34. A method of treating a bone defect in an animal in need thereof, the method comprising:
applying an osteoimplant to a defect site such that the surface of the osteoimplant conforms to the surface of the bone defect site, wherein the osteoimplant is an osteoinductive osteoimplant comprising of bone having an outer surface possessing at least one demineralized zone and at least one non-demineralized zone, the demineralized zone of the outer surface of the bone being at least about 100 microns thick, the non-demineralized zone being provided by configuring at least a portion of the demineralized zone.
- 35. The method of claim 34 wherein, the demineralized zone comprises a demineralized zone having a geometry selected from the group consisting of concave surfaces, convex surfaces, stepped surfaces, tapered surfaces, flat surfaces, serrated surfaces, cylindrical dowels, cortical rings, wedges, blocks, screws, pins and combinations thereof.
- 36. The method of claim 34 wherein, the non-demineralized zone comprises a non-demineralized zone having a geometry selected from the group consisting of threaded holes, receiving holes, hex shaped recesses, concave surfaces, convex surfaces, stepped surfaces, tapered surfaces, flat surfaces, serrated surfaces, cylindrical dowels, cortical rings, wedges, blocks, screws, pins and combinations thereof.
- 37. A method for manufacturing a load-bearing osteoinductive osteoimplant comprising:
demineralizing at least a portion of at least one surface of a monolithic section of cortical bone to a depth of from about 100 to about 2000 microns to provide a surface demineralized monolithic section of cortical bone; and, configuring the monolithic section of cortical bone to provide a load-bearing osteoinductive osteoimplant possessing an outer surface possessing at least one demineralized zone and a non-demineralized inner core.
- 38. The method of claim 37 wherein, the step of configuring comprises at least one operation selected from the group consisting of cutting, shaving, slicing, milling, grinding, drilling, molding, shaping, turning, chiseling, dissolving, and etching.
- 39. The method of claim 37 wherein, the step of configuring is performed prior to the step of demineralizing.
- 40. The method of claim 37 wherein, the step of configuring is performed after the step of demineralizing.
- 41. The method of claim 37 further comprising the step of masking a region of the monolithic section of cortical bone prior to the step of demineralizing.
- 42. The method of claim 41 wherein, the step of masking is performed by at least one step selected from the group consisting of coating, treating, and physically occupying a region of the cortical bone desired to be maintained in a mineralized condition.
- 43. The method of claim 37 wherein, the step of demineralizing is performed for at least about 15 minutes.
- 44. The method of claim 37 wherein, the step of demineralizing is performed for between about 30 minutes and about 60 minutes.
- 45. A load-bearing osteoinductive osteoimplant comprising a monolithic section of bone, said bone possessing at least one outer surface possessing at least one demineralized zone and at least one non-demineralized zone, said cortical bone possessing a non-demineralized core, wherein the demineralized zone of the outer surface of the bone is from about 100 to about 2000 microns thick, the non-demineralized zone of the outer surface being provided by configuring at least a portion of the demineralized zone.
- 46. The osteoimplant of claim 45 wherein, the bone is selected from the group consisting of autograft bone, allograft bone, xenogenic bone, transgenic bone, composites thereof, and assemblies thereof.
- 47. The osteoimplant of claim 45 wherein, the bone is obtained from a bone selected from the group consisting of diaphysis of a femur, diaphysis of a tibia, diaphysis of a fibula, diaphysis of a humerus, diaphysis of a ulna, diaphysis of a radius, metaphysis of a femur, metaphysis of a tibia, metaphysis of a fibula, metaphysis of a ulna, metaphysis of a radius, phalanges, composites thereof, and assemblies thereof.
- 48. The osteoimplant of claim 45 having at least one geometry selected from the group consisting of threaded holes, receiving holes, hex shaped recesses, concave surfaces, convex surfaces, stepped surfaces, cylindrical dowels, cortical rings, wedges, blocks, screws, and pins.
- 49. The osteoimplant of claim 48 wherein at least one of the geometries is substantially non-demineralized.
- 50. A vertebral interbody fusion device comprising a monolithic section of bone configured to span an intervertebral space selected from the group consisting of an intervertebral space between adjacent vertebrae and a space between non-adjacent vertebrae, said bone possessing at least one outer surface possessing at least one demineralized zone, said bone possessing a non-demineralized core, wherein the demineralized zone of the outer surface of the bone is from about 100 to about 2000 microns thick, the fusion device having at least one non-demineralized zone provided by configuring at least a portion of the demineralized zone.
- 51. The fusion device of claim 50 wherein, the bone is selected from the group consisting of autograft bone, allograft bone, xenogenic bone, and transgenic bone.
- 52. The fusion device of claim 50 wherein, the bone is obtained from a bone selected from the group consisting of diaphysis of a femur, diaphysis of a tibia, diaphysis of a fibula, diaphysis of a humerus, diaphysis of a ulna, diaphysis of a radius, metaphysis of a femur, metaphysis of a tibia, metaphysis of a fibula, metaphysis of a ulna, metaphysis of a radius, phalanges, composites thereof, and assemblies thereof.
- 53. The fusion device of claim 50 having at least one geometry selected from the group consisting of threaded holes, receiving holes, hex shaped recesses, concave surfaces, convex surfaces, stepped surfaces, cylindrical dowels, cortical rings, wedges, blocks, screws, and pins.
- 54. The fusion device of claim 53 wherein at least one of the geometries is substantially non-demineralized.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority of U.S. Provisional application No. 60/204,069 filed May 12, 2000 and U.S. Provisional application No. 60/221,056 filed Jul. 27, 2000, the entire contents of both of which are incorporated herein by this reference.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60204069 |
May 2000 |
US |
|
60221056 |
Jul 2000 |
US |
Continuations (1)
|
Number |
Date |
Country |
Parent |
PCT/US01/15599 |
May 2001 |
US |
Child |
10285715 |
Nov 2002 |
US |