首页> 美国卫生研究院文献>Frontiers in Bioengineering and Biotechnology >Cytocompatible and Anti-bacterial Adhesion Nanotextured Titanium Oxide Layer on Titanium Surfaces for Dental and Orthopedic Implants
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Cytocompatible and Anti-bacterial Adhesion Nanotextured Titanium Oxide Layer on Titanium Surfaces for Dental and Orthopedic Implants

机译:用于牙科和整形外科植入物的钛表面上的细胞相容性和抗菌粘附性纳米结构化氧化钛层

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摘要

It is widely recognized that surface nanotextures applied on a biomaterial can affect wettability, protein absorption and cellular and/or bacterial adhesion; accordingly, they are nowadays of great interest to promote fast osseointegration and to maintain physiological healing around biomedical implants. In order to be suitable for clinical applications, surface nanotextures must be not only safe and effective, but also, they should be produced through industrial processes scalable to real devices with sustainable processes and costs: this is often a barrier to the market entry. Based on these premises, a chemical surface treatment designed for titanium and its alloys able to produce an oxide layer with a peculiar sponge like nanotexture coupled with high density of hydroxyl group is here presented. The modified Ti-based surfaces previously showed inorganic bioactivity intended as the ability to induce apatite precipitation in simulated body fluid. Physicochemical properties and morphology of the obtained layers have been characterized by means of FESEM, XPS, and Zeta-potential. Biological response to osteoblasts progenitors and bacteria has been tested. The here proposed nanotextured surfaces successfully supported osteoblasts progenitors' adhesion, proliferation and extracellular matrix deposition thus demonstrating good biocompatibility. Moreover, the nanotexture was able to significantly reduce bacteria surface colonization when the orthopedic and the periodontal pathogens Staphylococcus aureus and Aggregatibacter actinomycetemcomitans strains were applied for a short time. Finally, the applicability of the proposed surface treatment to real biomedical devices (a 3D acetabular cup, a dental screw and a micro-sphered laryngeal implant) has been here demonstrated.
机译:众所周知,应用于生物材料的表面纳米纹理会影响润湿性,蛋白质吸收以及细胞和/或细菌的粘附。因此,当今它们对促进快速骨整合和维持生物医学植入物周围的生理愈合具有极大的兴趣。为了适合临床应用,表面纳米纹理不仅必须安全有效,而且还应通过可扩展至具有可持续过程和成本的真实设备的工业过程来生产:这通常是市场准入的障碍。基于这些前提,本文介绍了一种针对钛及其合金设计的化学表面处理工艺,该工艺能够利用特殊的海绵(如纳米纹理)结合高密度的羟基来产生氧化层。改性的钛基表面先前显示出无机生物活性,旨在诱导模拟体液中的磷灰石沉淀。所获得的层的物理化学性质和形态已经通过FESEM,XPS和Zeta电位来表征。已经测试了对成骨细胞祖细胞和细菌的生物反应。本文提出的纳米结构化表面成功地支持了成骨细胞祖细胞的粘附,增殖和细胞外基质沉积,从而证明了良好的生物相容性。此外,当在短时间内使用整形外科和牙周病原体金黄色葡萄球菌和聚合放线菌放线菌菌株时,纳米质地能够显着减少细菌表面定殖。最后,本文已证明了所提出的表面处理技术对实际生物医学设备(3D髋臼杯,牙螺钉和微球形喉植入物)的适用性。

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