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Characteristics of novel Ti–10Mo-xCu alloy by powder metallurgy for potential biomedical implant applications

When biomaterials are implanted in the human body, the surfaces of the implants become favorable sites for microbial adhesion and biofilm formation, causing peri-implant infection which frequently results in the failure of prosthetics and revision surgery. Ti–Mo alloy is one of the commonly used imp...

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Autores principales: Xu, Wei, Hou, Chenjin, Mao, Yuxuan, Yang, Lei, Tamaddon, Maryam, Zhang, Jianliang, Qu, Xuanhui, Liu, Chaozong, Su, Bo, Lu, Xin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: KeAi Publishing 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7218015/
https://www.ncbi.nlm.nih.gov/pubmed/32420516
http://dx.doi.org/10.1016/j.bioactmat.2020.04.012
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author Xu, Wei
Hou, Chenjin
Mao, Yuxuan
Yang, Lei
Tamaddon, Maryam
Zhang, Jianliang
Qu, Xuanhui
Liu, Chaozong
Su, Bo
Lu, Xin
author_facet Xu, Wei
Hou, Chenjin
Mao, Yuxuan
Yang, Lei
Tamaddon, Maryam
Zhang, Jianliang
Qu, Xuanhui
Liu, Chaozong
Su, Bo
Lu, Xin
author_sort Xu, Wei
collection PubMed
description When biomaterials are implanted in the human body, the surfaces of the implants become favorable sites for microbial adhesion and biofilm formation, causing peri-implant infection which frequently results in the failure of prosthetics and revision surgery. Ti–Mo alloy is one of the commonly used implant materials for load-bearing bone replacement, and the prevention of infection of Ti–Mo implants is therefore crucial. In this study, bacterial inhibitory copper (Cu) was added to Ti–Mo matrix to develop a novel Ti–Mo–Cu alloy with bacterial inhibitory property. The effects of Cu content on microstructure, tensile properties, cytocompatibility, and bacterial inhibitory ability of Ti–Mo–Cu alloy were systematically investigated. Results revealed that Ti–10Mo–1Cu alloy consisted of α and β phases, while there were a few Ti(2)Cu intermetallic compounds existed for Ti–10Mo–3Cu and Ti–10Mo–5Cu alloys, in addition to α and β phases. The tensile strength of Ti–10Mo-xCu alloy increased with Cu content while elongation decreased. Ti–10Mo–3Cu alloy exhibited an optimal tensile strength of 1098.1 MPa and elongation of 5.2%. Cytocompatibility study indicated that none of the Ti–10Mo-xCu alloys had a negative effect on MC3T3-E1 cell proliferation. Bacterial inhibitory rates against S. aureus and E. coli increased with the increase in Cu content of Ti–10Mo-xCu alloy, within the ranges of 20–60% and 15–50%, respectively. Taken together, this study suggests that Ti–10Mo–3Cu alloy with high strength, acceptable elongation, excellent cytocompatibility, and the bacterial inhibitory property is a promising candidate for biomedical implant applications.
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spelling pubmed-72180152020-05-15 Characteristics of novel Ti–10Mo-xCu alloy by powder metallurgy for potential biomedical implant applications Xu, Wei Hou, Chenjin Mao, Yuxuan Yang, Lei Tamaddon, Maryam Zhang, Jianliang Qu, Xuanhui Liu, Chaozong Su, Bo Lu, Xin Bioact Mater Article When biomaterials are implanted in the human body, the surfaces of the implants become favorable sites for microbial adhesion and biofilm formation, causing peri-implant infection which frequently results in the failure of prosthetics and revision surgery. Ti–Mo alloy is one of the commonly used implant materials for load-bearing bone replacement, and the prevention of infection of Ti–Mo implants is therefore crucial. In this study, bacterial inhibitory copper (Cu) was added to Ti–Mo matrix to develop a novel Ti–Mo–Cu alloy with bacterial inhibitory property. The effects of Cu content on microstructure, tensile properties, cytocompatibility, and bacterial inhibitory ability of Ti–Mo–Cu alloy were systematically investigated. Results revealed that Ti–10Mo–1Cu alloy consisted of α and β phases, while there were a few Ti(2)Cu intermetallic compounds existed for Ti–10Mo–3Cu and Ti–10Mo–5Cu alloys, in addition to α and β phases. The tensile strength of Ti–10Mo-xCu alloy increased with Cu content while elongation decreased. Ti–10Mo–3Cu alloy exhibited an optimal tensile strength of 1098.1 MPa and elongation of 5.2%. Cytocompatibility study indicated that none of the Ti–10Mo-xCu alloys had a negative effect on MC3T3-E1 cell proliferation. Bacterial inhibitory rates against S. aureus and E. coli increased with the increase in Cu content of Ti–10Mo-xCu alloy, within the ranges of 20–60% and 15–50%, respectively. Taken together, this study suggests that Ti–10Mo–3Cu alloy with high strength, acceptable elongation, excellent cytocompatibility, and the bacterial inhibitory property is a promising candidate for biomedical implant applications. KeAi Publishing 2020-05-08 /pmc/articles/PMC7218015/ /pubmed/32420516 http://dx.doi.org/10.1016/j.bioactmat.2020.04.012 Text en © 2020 Production and hosting by Elsevier B.V. on behalf of KeAi Communications Co., Ltd. http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Xu, Wei
Hou, Chenjin
Mao, Yuxuan
Yang, Lei
Tamaddon, Maryam
Zhang, Jianliang
Qu, Xuanhui
Liu, Chaozong
Su, Bo
Lu, Xin
Characteristics of novel Ti–10Mo-xCu alloy by powder metallurgy for potential biomedical implant applications
title Characteristics of novel Ti–10Mo-xCu alloy by powder metallurgy for potential biomedical implant applications
title_full Characteristics of novel Ti–10Mo-xCu alloy by powder metallurgy for potential biomedical implant applications
title_fullStr Characteristics of novel Ti–10Mo-xCu alloy by powder metallurgy for potential biomedical implant applications
title_full_unstemmed Characteristics of novel Ti–10Mo-xCu alloy by powder metallurgy for potential biomedical implant applications
title_short Characteristics of novel Ti–10Mo-xCu alloy by powder metallurgy for potential biomedical implant applications
title_sort characteristics of novel ti–10mo-xcu alloy by powder metallurgy for potential biomedical implant applications
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7218015/
https://www.ncbi.nlm.nih.gov/pubmed/32420516
http://dx.doi.org/10.1016/j.bioactmat.2020.04.012
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