## Abstract Oxidation of Ti6Al4V at 500°C for 1 h in air results in the formation of an outer ceramic layer that improves osteoblast behavior and decreases Ti and Al ion release. In this work, alumina blasted Ti6Al4V alloy has been thermally treated and its __in vitro__ biocompatibility has been as
Osteoblast response to thermally oxidized Ti6Al4V alloy
✍ Scribed by L. Saldaña; N. Vilaboa; G. Vallés; J. González-Cabrero; L. Munuera
- Book ID
- 102295200
- Publisher
- John Wiley and Sons
- Year
- 2005
- Tongue
- English
- Weight
- 403 KB
- Volume
- 73A
- Category
- Article
- ISSN
- 1549-3296
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✦ Synopsis
Abstract
We have recently reported that thermal oxidation treatments of Ti6Al4V at 500° and 700°C for 1 h result in the formation of an outer “ceramic” layer of rutile that do not decrease the high in vitro corrosion resistance of the alloy. In the present work, surface roughness was measured and found marginally increased as a consequence of oxidation of the alloy at 700°C, but not at 500°C. We have evaluated the biocompatibility of the oxidized surfaces, by assessing cell adhesion, proliferation, and differentiation of primary cultures of human osteoblastic cells. Compared with polished alloy, both thermal treatments increased osteoblast adhesion measured as cell attachment, β~1~ integrin and FAK‐Y397 expression, as well as cytoskeletal reorganization. Compared with treatment at 500°C, thermal oxidation at 700°C enhanced cell adhesion. Treatment at 700°C transiently impaired cell proliferation and viability, which were not altered in alloys oxidized at 500°C. Several markers of osteoblastic differentiation such as procollagen I peptide, alkaline phosphatase, osteocalcin, and mineralized nodule formation were found either unaffected or differentially increased by alloys treated either at 500° or 700°C. In addition, thermal oxidation at 700°C also increased osteoprotegerin secretion. Taken together, our results indicate that thermal oxidation treatments at 500° or 700°C for 1 h improve the in vitro biocompatibility of Ti6Al4V. © 2005 Wiley Periodicals, Inc. J Biomed Mater Res 73A: 97–107, 2005
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## Abstract We have evaluated the __in‐vitro__ biocompatibility of Ti6Al4V alloy coated by plasma spraying with an identical alloy. These surfaces are widely used in cementless prosthetic components, although osteoblasts behavior on this treated alloy has not been evaluated to date. Cross sectional