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Biological response of chemically treated surface of the ultrafine-grained Ti–6Al–7Nb alloy for biomedical applications

BACKGROUND: Nanophase surface properties of titanium alloys must be obtained for a suitable biological performance, particularly to facilitate cell adhesion and bone tissue formation. Obtaining a bulk nanostructured material using severe plastic deformation is an ideal processing route to improve th...

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Autores principales: de Oliveira, Diego Pedreira, Toniato, Tatiane Venturott, Ricci, Ritchelli, Marciano, Fernanda Roberta, Prokofiev, Egor, Valiev, Ruslan Z, Lobo, Anderson Oliveira, Jorge Júnior, Alberto Moreira
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Dove Medical Press 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6408917/
https://www.ncbi.nlm.nih.gov/pubmed/30880976
http://dx.doi.org/10.2147/IJN.S197099
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author de Oliveira, Diego Pedreira
Toniato, Tatiane Venturott
Ricci, Ritchelli
Marciano, Fernanda Roberta
Prokofiev, Egor
Valiev, Ruslan Z
Lobo, Anderson Oliveira
Jorge Júnior, Alberto Moreira
author_facet de Oliveira, Diego Pedreira
Toniato, Tatiane Venturott
Ricci, Ritchelli
Marciano, Fernanda Roberta
Prokofiev, Egor
Valiev, Ruslan Z
Lobo, Anderson Oliveira
Jorge Júnior, Alberto Moreira
author_sort de Oliveira, Diego Pedreira
collection PubMed
description BACKGROUND: Nanophase surface properties of titanium alloys must be obtained for a suitable biological performance, particularly to facilitate cell adhesion and bone tissue formation. Obtaining a bulk nanostructured material using severe plastic deformation is an ideal processing route to improve the mechanical performance of titanium alloys. By decreasing the grain size of a metallic material, a superior strength improvement can be obtained, while surface modification of a nanostructured surface can produce an attractive topography able to induce biological responses in osteoblastic cells. METHODS: Aiming to achieve such an excellent synergetic performance, a processing route, which included equal channel angular pressing (ECAP), hot and cold extrusion, and heat treatments, was used to produce a nanometric and ultrafine-grained (UFG) microstructure in the Ti-6Al-7Nb alloy (around of 200 nm). Additionally, UFG samples were surface-modified with acid etching (UFG-A) to produce a uniform micron and submicron porosity on the surface. Subsequently, alkaline treatment (UFG-AA) produced a sponge-like nanotopographic substrate able to modulate cellular interactions. RESULTS: After several kinds of biological tests for both treatment conditions (UFG-A and UFG-AA), the main results have shown that there was no cytotoxicity, expressed alkaline phosphatase activity and total protein amounts without statistical differences compared to control. However, the UFG-AA samples presented an attractive effect on the cell membranes, and cell adhesions were preferentially induced as compared with UFG-A. Both conditions demonstrated cell projections, but for UFG-AA, cells were more widely dispersed, and more quantities of filopodia formation could be observed. CONCLUSION: Herein, the reasons for such behaviors are discussed, and further results are presented in addition to those mentioned above.
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spelling pubmed-64089172019-03-16 Biological response of chemically treated surface of the ultrafine-grained Ti–6Al–7Nb alloy for biomedical applications de Oliveira, Diego Pedreira Toniato, Tatiane Venturott Ricci, Ritchelli Marciano, Fernanda Roberta Prokofiev, Egor Valiev, Ruslan Z Lobo, Anderson Oliveira Jorge Júnior, Alberto Moreira Int J Nanomedicine Original Research BACKGROUND: Nanophase surface properties of titanium alloys must be obtained for a suitable biological performance, particularly to facilitate cell adhesion and bone tissue formation. Obtaining a bulk nanostructured material using severe plastic deformation is an ideal processing route to improve the mechanical performance of titanium alloys. By decreasing the grain size of a metallic material, a superior strength improvement can be obtained, while surface modification of a nanostructured surface can produce an attractive topography able to induce biological responses in osteoblastic cells. METHODS: Aiming to achieve such an excellent synergetic performance, a processing route, which included equal channel angular pressing (ECAP), hot and cold extrusion, and heat treatments, was used to produce a nanometric and ultrafine-grained (UFG) microstructure in the Ti-6Al-7Nb alloy (around of 200 nm). Additionally, UFG samples were surface-modified with acid etching (UFG-A) to produce a uniform micron and submicron porosity on the surface. Subsequently, alkaline treatment (UFG-AA) produced a sponge-like nanotopographic substrate able to modulate cellular interactions. RESULTS: After several kinds of biological tests for both treatment conditions (UFG-A and UFG-AA), the main results have shown that there was no cytotoxicity, expressed alkaline phosphatase activity and total protein amounts without statistical differences compared to control. However, the UFG-AA samples presented an attractive effect on the cell membranes, and cell adhesions were preferentially induced as compared with UFG-A. Both conditions demonstrated cell projections, but for UFG-AA, cells were more widely dispersed, and more quantities of filopodia formation could be observed. CONCLUSION: Herein, the reasons for such behaviors are discussed, and further results are presented in addition to those mentioned above. Dove Medical Press 2019-03-06 /pmc/articles/PMC6408917/ /pubmed/30880976 http://dx.doi.org/10.2147/IJN.S197099 Text en © 2019 Oliveira et al. This work is published by Dove Medical Press Limited, and licensed under a Creative Commons Attribution License The full terms of the License are available at http://creativecommons.org/licenses/by/4.0/. The license permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Original Research
de Oliveira, Diego Pedreira
Toniato, Tatiane Venturott
Ricci, Ritchelli
Marciano, Fernanda Roberta
Prokofiev, Egor
Valiev, Ruslan Z
Lobo, Anderson Oliveira
Jorge Júnior, Alberto Moreira
Biological response of chemically treated surface of the ultrafine-grained Ti–6Al–7Nb alloy for biomedical applications
title Biological response of chemically treated surface of the ultrafine-grained Ti–6Al–7Nb alloy for biomedical applications
title_full Biological response of chemically treated surface of the ultrafine-grained Ti–6Al–7Nb alloy for biomedical applications
title_fullStr Biological response of chemically treated surface of the ultrafine-grained Ti–6Al–7Nb alloy for biomedical applications
title_full_unstemmed Biological response of chemically treated surface of the ultrafine-grained Ti–6Al–7Nb alloy for biomedical applications
title_short Biological response of chemically treated surface of the ultrafine-grained Ti–6Al–7Nb alloy for biomedical applications
title_sort biological response of chemically treated surface of the ultrafine-grained ti–6al–7nb alloy for biomedical applications
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6408917/
https://www.ncbi.nlm.nih.gov/pubmed/30880976
http://dx.doi.org/10.2147/IJN.S197099
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