Claims
- 1. An artificial organ construct for augmenting function of an organ comprising:
a three-dimensional biomatrix formed by perfusing a matrix material with at least one population of cultured cells, such that the cells attach to the matrix material and produce a tissue layer capable of augmenting organ function.
- 2. The construct of claim 1, wherein the construct is formed by perfusing cells onto a mini-matrix material.
- 3. The construct of claim 1, wherein the construct is selected to augment an organ selected from the group consisting of heart, kidney, liver, pancreas, spleen, bladder, ureter and urethra.
- 4. The construct of claim 1, wherein the matrix material is decellularized tissue.
- 5. The construct of claim 1, wherein the matrix material is a hydrogel.
- 6. The construct of claim 1, wherein the matrix material is a polymer.
- 7. The construct of claim 2, wherein the greatest dimension of the matrix is less than 50 millimeters.
- 8. The construct of claim 1 wherein the matrix is a substantial flat structure having a ratio of its greatest dimension to its thickness of greater than 5:1.
- 9. The construct of claim 1, wherein the construct is a kidney function augmenting construct comprising:
a three-dimensional biomatrix formed by perfusing a matrix material with a population of renal cells, such that the renal cells attach to the matrix and produce a tissue layer that differentiates into a nephron structure, or a part of a nephron structure, thereby augmenting kidney function.
- 10. The construct of claim 1, wherein the matrix has been initially perfused with a population of endothelial cells, such that the endothelial cells attach to the matrix to produce an endothelial tissue layer comprising a vascular system, followed by seeding with a second population of cells, such that the second cell population attaches to the endothelial tissue layer comprising the vascular system and differentiates to augment organ function.
- 11. A method for augmenting organ function comprising:
perfusing at least one population of cultured cells on or into a matrix material, such that cells attach to the matrix material; culturing the cells in the matrix material to produce a tissue layer capable of differentiating into an artificial organ contruct, thereby producing a three-dimensional biomatrix; implanting the three dimensional biomatrix into at least one target site in the organ, such that tissue layer of the three dimensional biomatrix differentiates to provide a gain of function to the organ, thereby augmenting organ function at the target site.
- 12. The method of claim 11, further comprising:
forming a plurality of three dimensional biomatrices by perfusing a plurality of matrix materials with at least one population of cultured cells, and culturing the cells to produce a tissue layer capable of differentiating; and implanting the plurality of three dimensional biomatrices into multiple target sites in the organ, such that plurality of three dimensional mini-biomatrices differentiate to provide a gain of function to the organ, thereby augmenting organ function at the multiple target sites.
- 13. The method of claim 11, wherein the greatest dimension of the matrix is less than 50 millimeters.
- 14. The method of claim 11 wherein the matrix is a substantial flat structure having a ratio of its greatest dimension to its thickness of greater than 5:1.
- 15. The method of claim 11, wherein the organ is selected from the group consisting of heart, kidney, liver, pancreas, spleen, bladder, ureter and urethra.
- 16. The method of claim 11, wherein the matrix is decellularized tissue.
- 17. The method of claim 11, wherein the matrix is a hydrogel.
- 18. The method of claim 11, wherein the matrix is a polymer.
- 19. The method of claim 11, wherein the construct is a kidney function augmenting construct comprising:
a three-dimensional biomatrix formed by perfusing a matrix material with a population of renal cells, such that the renal cells attach to the matrix and produce a tissue layer that differentiates into a nephron structure, or a part of a nephron structure, thereby augmenting kidney function.
- 20. The method of claim 11, wherein the matrix has been initially perfused with a population of endothelial cells, such that the endothelial cells attach to the matrix to produce an endothelial tissue layer comprising a vascular system, followed by seeding with a second population of cells, such that the second cell population attaches to the endothelial tissue layer comprising the vascular system and differentiates to augment organ function.
- 21. A method for augmenting kidney function comprising:
perfusing a population of cultured renal cells on, or into a matrix material, such that renal cells attach to the matrix material; culturing the cells in the matrix material until the renal cells produce a tissue layer capable of differentiating into a nephron structure, or part of a nephron structure, thereby producing a three dimensional biomatrix; and implanting the three dimensional biomatrix into at least one target site in the kidney, such that tissue layer of the three dimensional biomatrix differentiates into a nephron structure, or part of a nephron structure, thereby augmenting kidney function at the target site.
- 22. The method of claim 21, further comprising:
forming a plurality of three dimensional biomatrices by perfusing a plurality of matrix materials with at least one population of cultured renal cells, and culturing the renal cells in the plurality of matrix materials until the renal cells produce a tissue layer capable of differentiation into a nephron structure, or part of a nephron structure; and implanting the plurality of three dimensional biomatrices into multiple target sites in the kidney, such that plurality of three dimensional biomatrices differentiate into a plurality of nephron structures, or parts of a nephron structures, thereby augmenting kidney function at the multiple target sites.
- 23. The method of claim 21, wherein the matrix is decellularized tissue.
- 24. The method of claim 21, wherein the matrix is a hydrogel.
- 25. The method of claim 21, wherein the matrix is a polymer.
- 26. The method of claim 21, wherein the greatest dimension of the matrix is less than 50 millimeters.
- 27. The method of claim 21, wherein the matrix is a substantial flat structure having a ratio of its greatest dimension to its thickness of greater than 5:1.
- 28. The method of claim 21, wherein the renal cells are an isolated population of cells selected from the group consisting of glomeruli cells, proximal tubule cells, distil tubule cells, loop of Henlè cells, and collecting duct cells.
- 29. The method of claim 21, wherein the renal cells comprise a mixed population of cells selected from the group consisting of glomeruli cells, proximal tubule cells, distil tubule cells, loop of Henlè cells, and collecting duct cells..
- 30. The method of claim 21, wherein the nephron structure consists of the glomerulus, distil tubules, proximal tubules, loop of Henlè and collecting ducts.
- 31. The method of claim 21, wherein the part of the nephron structure comprises at least one renal structure selected from the group consisting of the glomerulus, distil tubules, proximal tubules, loop of Henlè and collecting ducts.
- 32. An artificial kidney function augmenting construct comprising:
a three-dimensional biomatrix formed by perfusing a matrix material with a population of renal cells, such that the renal cells attach to the matrix and produce a tissue layer that differentiates into a nephron structure, or a part of a nephron structure, thereby augmenting kidney function.
- 33. The construct of claim 32, wherein the renal cells are an isolated population of cells selected from the group consisting of glomeruli cells, proximal tubule cells, distil tubule cells, loop of Henlè cells, and collecting duct cells.
- 34. The construct of claim 32, wherein the renal cells comprise a mixed population of cells selected from the group consisting of glomeruli cells, proximal tubule cells, distil tubule cells, loop of Henlè cells, and collecting duct cells.
- 35. The construct of claim 32, wherein the nephron structure consists of the glomerulus, distil tubules, proximal tubules, loop of Henlè and collecting ducts.
- 36. The construct of claim 32, wherein the part of the nephron structure comprises at least one renal structure selected from the group consisting of the glomerulus, distil tubules, proximal tubules, loop of Henlè and collecting ducts.
REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the priority of U.S. Provisional Application Serial No. 60/331,500, filed Nov. 16, 2001. This application is also a continuation-in-part of U.S. patent application Ser. No. 09/474,525, filed Dec. 29, 1999. The contents of both related applications are expressly incorporated by reference.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60331500 |
Nov 2001 |
US |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09474525 |
Dec 1999 |
US |
Child |
10292166 |
Nov 2002 |
US |