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Merck
CN

Cell response of anodized nanotubes on titanium and titanium alloys.

Journal of biomedical materials research. Part A (2013-02-26)
Sepideh Minagar, James Wang, Christopher C Berndt, Elena P Ivanova, Cuie Wen
摘要

Titanium and titanium alloy implants that have been demonstrated to be more biocompatible than other metallic implant materials, such as Co-Cr alloys and stainless steels, must also be accepted by bone cells, bonding with and growing on them to prevent loosening. Highly ordered nanoporous arrays of titanium dioxide that form on titanium surface by anodic oxidation are receiving increasing research interest due to their effectiveness in promoting osseointegration. The response of bone cells to implant materials depends on the topography, physicochemistry, mechanics, and electronics of the implant surface and this influences cell behavior, such as adhesion, proliferation, shape, migration, survival, and differentiation; for example the existing anions on the surface of a titanium implant make it negative and this affects the interaction with negative fibronectin (FN). Although optimal nanosize of reproducible titania nanotubes has not been reported due to different protocols used in studies, cell response was more sensitive to titania nanotubes with nanometer diameter and interspace. By annealing, amorphous TiO2 nanotubes change to a crystalline form and become more hydrophilic, resulting in an encouraging effect on cell behavior. The crystalline size and thickness of the bone-like apatite that forms on the titania nanotubes after implantation are also affected by the diameter and shape. This review describes how changes in nanotube morphologies, such as the tube diameter, the thickness of the nanotube layer, and the crystalline structure, influence the response of cells.

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钛, mesh, 100x100mm, nominal aperture 0.19mm, wire diameter 0.23mm, 60x60 wires/inch, open area 20%, twill weave
Sigma-Aldrich
钛, wire, diam. 0.25 mm, 99.7% trace metals basis
钛, mesh, 100x100mm, nominal aperture 4.3mm, wire diameter 1.5mm, 4.4x4.4 wires/inch, open area 94%, platinized diamond mesh
Sigma-Aldrich
钛, foil, thickness 2.0 mm, 99.7% trace metals basis
钛, rod, 10mm, diameter 50mm, 99.99+%
钛, rod, 25mm, diameter 50mm, 99.99+%
Sigma-Aldrich
钛, wire, diam. 0.5 mm, 99.99% trace metals basis
钛, wire, straight, 1000mm, diameter 1.0mm, as drawn, 99.6+%
钛, tube, 200mm, outside diameter 2.03mm, inside diameter 1.55mm, wall thickness 0.24mm, annealed, 99.6+%
钛, wire reel, 2m, diameter 1.0mm, as drawn, 99.99+%
钛, rod, 200mm, diameter 2mm, as drawn, 99.99+%
钛, wire reel, 25m, diameter 0.20mm, annealed, 99.6+%
钛, rod, 1000mm, diameter 2mm, annealed, 99.6+%
钛, rod, 1000mm, diameter 1.5mm, annealed, 99.6+%
钛, wire reel, 1m, diameter 0.5mm, as drawn, 99.99+%
钛, wire reel, 0.5m, diameter 0.25mm, as drawn, 99.99+%
钛, rod, 100mm, diameter 30mm, annealed, 99.6+%
钛, tube, 500mm, outside diameter 9.5mm, inside diameter 8.2mm, wall thickness 0.65mm, annealed, 99.6+%
钛, rod, 100mm, diameter 2mm, annealed, 99.6+%
钛, tube, 100mm, outside diameter 3.0mm, inside diameter 1.5mm, wall thickness 0.75mm, annealed, 99.6+%
钛, rod, 500mm, diameter 5mm, annealed, 99.6+%
钛, wire reel, 1m, diameter 0.25mm, as drawn, 99.6+%
钛, tube, 1000mm, outside diameter 10mm, inside diameter 8mm, wall thickness 1.0mm, annealed, 99.6+%
钛, wire reel, 1m, diameter 0.25mm, annealed, 99.6+%
钛, rod, 100mm, diameter 10mm, annealed, 99.6+%
钛, rod, 100mm, diameter 5mm, annealed, 99.6+%
钛, rod, 200mm, diameter 1.5mm, annealed, 99.6+%
钛, tube, 1000mm, outside diameter 10.3mm, inside diameter 8.7mm, wall thickness 0.8mm, annealed, 99.6+%
钛, rod, 200mm, diameter 3.0mm, annealed, 99.6+%
钛, rod, 1000mm, diameter 5mm, annealed, 99.6+%