Claims
- 1. In apparatus for use in a method of growing bone in order to increase the volume of the bony ridge of the maxilla or mandible by creating a protected and supported space between the underside of the gum tissue and the jaw bone which is protected from outside chewing forces, muscular or tissue pressure, or any other premature loading by utilizing a guided-tissue regeneration plate support and fixation system, which method comprises:
A) fixing a support medium to the jaw bone, said support medium being configured to receive and support a guided-tissue regeneration plate; B) juxtaposing a guided-tissue regeneration plate with respect to the jaw bone in a tent-like manner to create a protected space by affixing said guided-tissue regeneration plate to and suspending it from said support medium, which said guided-tissue regeneration plate is pliable and moldable, but keeps its shape after being molded, said guided-tissue regeneration plate being further characterized in that it is fabricated from a bio-compatible material; and C) waiting for bone to grow in the resulting protected space; the improvement in which: D) said guided-tissue regeneration plate comprises first and second integrated components including:
1) a first component comprising a support plate having a peripheral region and a generally open central portion; and 2) a fine mesh screen juxtaposed over said central portion of said support plate and fixed to said peripheral region thereof.
- 2. The apparatus of claim 1 in which said support plate and said fine mesh screen are each made of a bio-compatible material selected from the group including titanium, chromium cobalt alloy and Teflon-coated surgical steel and in which said peripheral region of said support plate is perforated.
- 3. The apparatus of claim 1 in which said guided-tissue regeneration plate is coated with a resorptive, bio-compatible material for the purpose of creating a temporary guided-tissue regeneration plate barrier to prevent migration of epithelial cells across its surface, yet allow blood supply and/or nutrients to pass through the resorptive barrier.
- 4. The apparatus of claim 2 in which said guided-tissue regeneration plate is coated with a resorptive, bio-compatible material for the purpose of creating a temporary guided-tissue regeneration plate barrier to prevent migration of epithelial cells across its surface, yet allow blood supply and/or nutrients to pass through the resorptive barrier.
- 5. The apparatus of claim 1 in which:
A) the thickness of said peripheral region of said support plate falls within the range of 0.008-0.025 of an inch; and B) said fine mesh screen comprises a weave of wire in which:
1) the diameter said wire employed falls within the range of 0.002-0.006 of an inch; and 2) the weave of said wire falls within the range of 10×10 wires per inch to 200×200 wires per inch.
- 6. The apparatus of claim 2 in which:
A) the thickness of said peripheral region of said support plate falls within the range of 0.008-0.025 of an inch; and B) said fine mesh screen comprises a weave of wire in which:
1) the diameter said wire employed falls within the range of 0.002-0.006 of an inch; and 2) the weave of said wire falls within the range of 10×10 wires per inch to 200×200 wires per inch.
- 7. The apparatus of claim 3 in which:
A) the thickness of said peripheral region of said support plate falls within the range of 0.008-0.025 of an inch; and B) said fine mesh screen comprises a weave of wire in which:
1) the diameter said wire employed falls within the range of 0.002-0.006 of an inch; and 2) the weave of said wire falls within the range of 10×10 wires per inch to 75×75 wires per inch.
- 8. The apparatus of claim 4 in which:
A) the thickness of said peripheral region of said support plate falls within the range of 0.008-0.025 of an inch; and B) said fine mesh screen comprises a weave of wire in which:
1) the diameter said wire employed falls within the range of 0.002-0.006 of an inch; and 2) the weave of said wire falls within the range of 10×10 wires per inch to 200×200 wires per inch.
- 9. The apparatus of claim 1 in which integral struts extend from said peripheral region of said support plate into said generally open central portion thereof to provide support for said fine mesh screen.
- 10. The apparatus of claim 2 in which integral struts extend from said peripheral region of said support plate into said generally open central portion thereof to provide support for said fine mesh screen.
- 11. The apparatus of claim 5 in which integral struts extend from said peripheral region of said support plate into said generally open central portion thereof to provide support for said fine mesh screen.
- 12. The apparatus of claim 6 in which integral struts extend from said peripheral region of said support plate into said generally open central portion thereof to provide support for said fine mesh screen.
- 13. The apparatus of claim 1 in which at least a plurality of said integral struts join a circular central support having an aperture therethrough for coupling with said support medium.
- 14. The apparatus of claim 2 in which at least a plurality of said integral struts join a circular central support having an aperture therethrough for coupling with said support medium.
- 15. The apparatus of claim 5 in which at least a plurality of said integral struts join a circular central support having an aperture therethrough for coupling with said support medium.
- 16. The apparatus of claim 6 in which at least a plurality of said integral struts join a circular central support having an aperture therethrough for coupling with said support medium.
- 17. The apparatus of claim 9 in which at least a plurality of said integral struts join a circular central support having an aperture therethrough for coupling with said support medium.
- 18. The apparatus of claim 10 in which at least a plurality of said integral struts join a circular central support having an aperture therethrough for coupling with said support medium.
- 19. The apparatus of claim 11 in which at least a plurality of said integral struts join a circular central support having an aperture therethrough for coupling with said support medium.
- 20. The apparatus of claim 12 in which at least a plurality of said integral struts join a circular central support having an aperture therethrough for coupling with said support medium.
- 21. In apparatus for use in a method of growing bone in order to increase the volume of the bony ridge of the maxilla or mandible by creating a protected and supported space between the underside of the gum tissue and the jaw bone which is protected from outside chewing forces, muscular or tissue pressure, or any other premature loading by utilizing a guided-tissue regeneration plate support and fixation system, which method comprises:
A) fixing a support medium to the jaw bone, said support medium being configured to receive and support a guided-tissue regeneration plate; B) juxtaposing a guided-tissue regeneration plate with respect to the jaw bone in a tent-like manner to create a protected space by affixing said guided-tissue regeneration plate to and suspending it from said support medium, which said guided-tissue regeneration plate is pliable and moldable, but keeps its shape after being molded, said guided-tissue regeneration plate being further characterized in that it is fabricated from a bio-compatible material; and C) waiting for bone to grow in the resulting protected space; the improvement in which: D) said guided-tissue regeneration plate comprises first and second regions of a monolithic structure:
1) said first region comprising a peripheral area having a first thickness; and 2) said second region comprising a central area having a thickness which is less than that of said peripheral region, said central area being perforated with a plurality of apertures.
- 22. The apparatus of claim 21 in which said monolithic structure is made of a bio-compatible material selected from the group including titanium, chromium cobalt alloy and Teflon-coated surgical steel and in which said peripheral region of said support plate is perforated.
- 23. The apparatus of claim 21 in which said guided-tissue regeneration plate is coated with a resorptive, bio-compatible material for the purpose of creating a temporary guided-tissue regeneration plate barrier to prevent migration of epithelial cells across its surface, yet allow blood supply and/or nutrients to pass through the resorptive barrier.
- 24. The apparatus of claim 21 in which said guided-tissue regeneration plate is coated with a resorptive, bio-compatible material for the purpose of creating a temporary guided-tissue regeneration plate barrier to prevent migration of epithelial cells across its surface, yet allow blood supply and/or nutrients to pass through the resorptive barrier.
- 25. The apparatus of claim 21 in which:
A) the thickness of said peripheral area of said guided-tissue regeneration plate falls within the range of 0.008-0.025 of an inch; and B) the thickness of said central area of said guided-tissue regeneration plate falls within the range of 0.002-0.006 of an inch.
- 26. The apparatus of claim 22 in which:
A) the thickness of said peripheral area of said guided-tissue regeneration plate falls within the range of 0.008-0.025 of an inch; and B) the thickness of said central area of said guided-tissue regeneration plate falls within the range of 0.002-0.006 of an inch.
- 27. The apparatus of claim 21 in which integral struts extend from said peripheral area of said guided-tissue regeneration plate into said central area to provide support for said central area.
- 28. The apparatus of claim 22 in which integral struts extend from said peripheral area of said guided-tissue regeneration plate into said central area to provide support for said central area.
- 29. The apparatus of claim 25 in which integral struts extend from said peripheral area of said guided-tissue regeneration plate into said central area to provide support for said central area.
- 30. The apparatus of claim 26 in which integral struts extend from said peripheral area of said guided-tissue regeneration plate into said central area to provide support for said central area.
- 31. The apparatus of claim 21 in which at least a plurality of said integral struts join a circular central support having an aperture therethrough for coupling with said support medium.
- 32. The apparatus of claim 22 in which at least a plurality of said integral struts join a circular central support having an aperture therethrough for coupling with said support medium.
- 33. The apparatus of claim 25 in which at least a plurality of said integral struts join a circular central support having an aperture therethrough for coupling with said support medium.
- 34. The apparatus of claim 26 in which at least a plurality of said integral struts join a circular central support having an aperture therethrough for coupling with said support medium.
- 35. The apparatus of claim 27 in which at least a plurality of said integral struts join a circular central support having an aperture therethrough for coupling with said support medium.
- 36. The apparatus of claim 28 in which at least a plurality of said integral struts join a circular central support having an aperture therethrough for coupling with said support medium.
- 37. The apparatus of claim 29 in which at least a plurality of said integral struts join a circular central support having an aperture therethrough for coupling with said support medium.
- 38. The apparatus of claim 30 in which at least a plurality of said integral struts join a circular central support having an aperture therethrough for coupling with said support medium.
- 39. The apparatus of claim 21 in which said guided-tissue regeneration plate is fabricated by the steps of:
A) overlaying, on a first surface of a monolithic plate, a mask conforming to the shape of said peripheral area such that only an area conforming to the shape of the central area is exposed; B) etching the first surface of the monolithic plate in the exposed area to diminish the thickness of the monolithic plate in the exposed area; and C) perforating the central area with a plurality of apertures.
- 40. The apparatus of claim 39 in which the monolithic plate is a titanium plate.
- 41. In apparatus for use in a method of growing bone in order to increase the volume of the bony ridge of the maxilla or mandible by creating a protected and supported space between the underside of the gum tissue and the jaw bone which is protected from outside chewing forces, muscular or tissue pressure, or any other premature loading by utilizing a guided-tissue regeneration plate support and fixation system, which method comprises:
A) juxtaposing a guided-tissue regeneration plate with respect to the jaw bone in a tent-like manner to create a protected space, which said guided-tissue regeneration plate is pliable and moldable, but keeps its shape after being molded, said guided-tissue regeneration plate being further characterized in that it is fabricated from a bio-compatible material; and B) waiting for bone to grow in the resulting protected space; the improvement in which: C) at least a first region of the surface of said guided-tissue regeneration plate is roughened to decrease the surface tension thereof.
- 42. The apparatus of claim 41 in which the entire surface of said guided-tissue regeneration plate is roughened to decrease the surface tension thereof.
CROSS REFERENCE TO RELATED APPLICATION
[0001] This is a Continuation-in-Part of U.S. patent application Ser. No. 08/609,870, filed Mar. 1, 1996, by Dane Q. Robinson and entitled METHOD AND APPARATUS FOR GROWING JAW BONE UTILIZING A GUIDED-TISSUE REGENERATION PLATE SUPPORT AND FIXATION SYSTEM, now U.S. Pat. No. 5,839,899.
Continuations (1)
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Number |
Date |
Country |
| Parent |
09196915 |
Nov 1998 |
US |
| Child |
09832491 |
Apr 2001 |
US |
Continuation in Parts (1)
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Number |
Date |
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08609870 |
Mar 1996 |
US |
| Child |
09196915 |
Nov 1998 |
US |