Claims
- 1. A biocompatible, deformable membrane for the growth of cells comprising a microtextured polymer membrane having projections of between about 1 μm to about 100 μm in size and longitudinal grooves; wherein said polymer membrane comprises a surface modification to facilitate cellular adhesion to said membrane, and further wherein said growth of said cells on said membrane provides enhanced cellular differentiation of said cells as compared to growth on said polymer membrane in the absence of said grooves and/or said pegs.
- 2. The membrane of claim 1, wherein said polymer material is selected from the group consisting of silicone or other elastomeric polymers, hydrogels, biodegradables, bioerodible, or elastomeric polymers.
- 3. The membrane of claim 1, wherein said surface modification comprises laminin, fibronectin, partial peptide sequences thereof or modifications of laminin or fibronectin.
- 4. The membrane of claim 1, wherein said cells are muscle cells and the growth of said muscle cells on said membrane produces muscle cells that have contractile function.
- 5. A membrane of claim 1, wherein said membrane is fabricated into a master wafer using a method selected from the group consisting of photolithography, diamond turning, diamond ruling and laser machining.
- 6. A cell culture model for the growth and development of cells comprising: the membrane of claim 1 wherein said polymer membrane comprises a surface modification to facilitate cellular adhesion to said membrane, wherein said membrane comprises surface microtopography to facilitate cellular orientation; and further wherein said growth of said cells on said membrane provides enhanced cellular differentiation of said cells as compared to growth on said polymer membrane in the absence of said grooves and pegs.
- 7. A method of growing muscle cells comprising contacting a muscle cells with the membrane of claim 1, under media conditions suitable to facilitate the growth of said cell wherein growth of said muscle cells on said membrane reproduces the physiological micro-architecture of said muscle cells.
- 8. The method of claim 7 wherein said muscle cells are myocardial cells.
- 9. The method of claim 7, wherein said muscle cells grown on said membrane are responsive to neurohormonal stimulation.
- 10. The method of claim 7, wherein said muscle cells grown on said membrane exhibit contractile function that mimic the contractile function of the muscle cell in vivo, wherein said cells have mechanical deformation properties that are similar to the mechanical deformation properties of said cells in vivo.
- 11. A method of producing a tissue patch comprising:
(a) providing cells; (b) contacting said cells with the membrane of claim 1;(c) growing said cells in culture to allow the formation of tissue from said cells.
- 12. The method of claim 11, wherein said cell is selected from the group consisting of skeletal muscle, smooth muscle, cardiac muscle, vascular endothelial cells, lymphatic endothelial cells, stem cells, endothelial cartilage, bone cells or other cell types stimulated by mechanical force or subject to contact inhibition.
Parent Case Info
[0001] The present application claims the benefit of priority of U.S. Provisional application No. 60/235,094 filed Sep. 25, 2000. The entire text of that specification is incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60235094 |
Sep 2000 |
US |