Jäger Marcus, Jennissen Herbert P, Dittrich Florian, Fischer Alfons, Köhling Hedda Luise
Department of Orthopaedics and Trauma Surgery, University of Duisburg-Essen, Hufelandstrasse 55, D-45147 Essen, Germany.
Institute of Physiological Chemistry, University Hospital, University of Duisburg Essen, Hufelandstrasse 55, D-45147 Essen, Germany.
Materials (Basel). 2017 Nov 13;10(11):1302. doi: 10.3390/ma10111302.
The surface design of titanium implants influences not only the local biological reactions but also affects at least the clinical result in orthopaedic application. During the last decades, strong efforts have been made to improve osteointegration and prevent bacterial adhesion to these surfaces. Following the rule of "smaller, faster, cheaper", nanotechnology has encountered clinical application. It is evident that the hierarchical implant surface micro- and nanotopography orchestrate the biological cascades of early peri-implant endosseous healing or implant loosening. This review of the literature gives a brief overview of nanostructured titanium-base biomaterials designed to improve osteointegration and prevent from bacterial infection.
钛植入物的表面设计不仅会影响局部生物学反应,而且至少会影响其在骨科应用中的临床效果。在过去几十年中,人们为改善骨整合和防止细菌附着于这些表面付出了巨大努力。遵循“更小、更快、更便宜”的原则,纳米技术已应用于临床。很明显,植入物表面的微观和纳米级分层形貌共同调控着种植体周围早期骨内愈合或种植体松动的生物学过程。本文献综述简要概述了旨在改善骨整合和预防细菌感染的纳米结构钛基生物材料。