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用于骨科应用的钛:改善生物相容性和防止细菌生物膜形成的表面改性概述。

Titanium for Orthopedic Applications: An Overview of Surface Modification to Improve Biocompatibility and Prevent Bacterial Biofilm Formation.

作者信息

Quinn James, McFadden Ryan, Chan Chi-Wai, Carson Louise

机构信息

School of Pharmacy, Queen's University Belfast, Medical Biology Centre, 97 Lisburn Road, Belfast BT9 7BL, UK.

School of Mechanical and Aerospace Engineering, Queen's University Belfast, Ashby Building, Stranmillis Road, Belfast BT9 5AH, UK.

出版信息

iScience. 2020 Oct 28;23(11):101745. doi: 10.1016/j.isci.2020.101745. eCollection 2020 Nov 20.

Abstract

Titanium and its alloys have emerged as excellent candidates for use as orthopedic biomaterials. Nevertheless, there are often complications arising after implantation of orthopedic devices, most notably prosthetic joint infection and aseptic loosening. To ensure that implanted devices remain functional , innovation in surface modification has attracted much attention in the effort to develop orthopedic materials with optimal characteristics at the biomaterial-tissue interface. This review will draw together metallurgy, surface engineering, biofilm microbiology, and biomaterial science. It will serve to appreciate why titanium and its alloys are frequently used orthopedic biomaterials and address some of the challenges facing these biomaterials currently, including the significant problem of device-associated infection. Finally, the authors shall consolidate and evaluate surface modification techniques employed to overcome some of these issues by offering a unique perspective as to the direction in which research is headed from a broad, interdisciplinary point of view.

摘要

钛及其合金已成为骨科生物材料的理想选择。然而,骨科器械植入后常常会出现并发症,最显著的是人工关节感染和无菌性松动。为确保植入器械保持功能,表面改性方面的创新在开发生物材料与组织界面具有最佳特性的骨科材料的努力中备受关注。本综述将综合冶金学、表面工程学、生物膜微生物学和生物材料科学。这将有助于理解为什么钛及其合金经常被用作骨科生物材料,并解决目前这些生物材料面临的一些挑战,包括与器械相关的感染这一重大问题。最后,作者将从广泛的跨学科角度,对为克服其中一些问题而采用的表面改性技术进行整合和评估,并对研究方向提供独特的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8b91/7670191/bfaf3d6da27f/gr1.jpg

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