MODIFIED SURFACES FOR ATTACHMENT OF BIOLOGICAL MATERIALS
The invention relates to bioactive surface coatings deposited on selected substrates. Surface nanostructured film coatings deposited on most metal or nonmetal substrates to provide surfaces can be engineered to promote enhanced tissue/cell adhesion. Attached cells, including osteoblasts, fibroblasts and endothelial cells, retain viability and will readily differentiate and proliferate under appropriate conditions. Fibroblasts and endothelial cells exhibit good attachment and growth on most coated substrates, except on nano surfaced structured silicone.
1 . An article comprising:
a substrate having a microstructure surface; and
a nanostructure disposed on the surface, wherein the nanostructure substrate surface enhances osteoblast proliferation compared to the uncoated substrate.
2 . The article according to claim 1 , wherein the substrate comprises a non-metallic material.
3 . The article according to claim 2 , wherein the non-metallic material comprises a thermoplastic.
4 . The article according to claim 3 , wherein the substrate comprises one of PEEK, UHMWPE, EPTFE, PTFE, polypropylene, polyurethane, polyimide, polyester, and nylon.
5 . The article according to claim 1 , wherein the coated surface comprises a roughness identifiable by a low magnification microscopy.
6 . The article according to claim 5 , wherein the nanostructure comprises particle sizes between about 1 nanometer and about 500 microns.
7 . The article according to claim 6 , wherein the nanostructure comprises particle sizes between about 1 nanometer and about 100 nanometers.
8 . The article according to claim 7 , wherein the nanostructure comprises particle sizes of about 15 nanometers.
9 . The article according to claim 1 , wherein the nanostructure comprises titanium.
10 . The article according to claim 1 , wherein the nanostructure comprises a nanoparticle density between about 10 3 particles/centimeter 2 and about 10 4 particles/centimeter 2 .
11 . The article according to claim 1 , wherein the nanostructure has a thickness on the substrate of between about 0.1 and about 500 microns.
12 . The article according to claim 1 , wherein the nanostructure comprises particles embedded in the substrate surface.
13 . The article according to claim 1 , wherein the nanostructure is adhered to the substrate in the absence of a gas.
14 . The article according to claim 1 , wherein the substrate comprises PEEK and wherein the nanostructure comprises titanium nanoparticulate.
15 . The article according to claim 14 , wherein osteoblast cells exhibit a greater adherence on the titanium nanoparticulate coated substrate than to an uncoated substrate after 5 days exposure to the substrate.
16 . The article according to claim 15 , wherein osteoblast cells exhibit greater than about 600% adherence on the titanium nanoparticulate coated substrate than to the uncoated substrate after 5 days exposure to the substrate.
17 . The article according to claim 14 , wherein endothelial cells exhibit a greater cell adhesion on the titanium nanoparticulate coated substrate than on an uncoated substrate after 5 days exposure to the substrate.
18 . The article according to claim 17 , wherein endothelial cells exhibit about 500% greater cell adhesion on the titanium nanoparticulate coated substrate than on the uncoated substrate after 5 days exposure to the substrate.
19 . The article according to claim 14 , wherein fibroblast cells exhibit a greater cell adhesion on the titanium nanoparticulate coated substrate than on an uncoated substrate after 5 days exposure to the substrate.
20 . The article according to claim 19 , wherein fibroblast cells exhibit about 90% greater cell adhesion on the titanium nanoparticulate coated substrate than on the uncoated substrate after 5 days exposure to the substrate.
21 . The article according to claim 14 , wherein fibroblast cells adhere less on a titanium coated silicone surface compared to adhesion on the nanoparticulate titanium coated substrate.
22 . An article comprising:
a substrate having a microstructure surface; and
a nanostructure disposed on the surface, wherein the nanostructure substrate surface enhances at least one of cell adhesion, proliferation, growth and cell density.
23 . An article comprising:
a thermoset substrate having a microstructure surface; and
a nanostructure disposed on the surface, wherein the nanostructure substrate surface decreases osteoblast proliferation compared to an uncoated substrate.