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电子束技术构建的β钛合金表面的接触导向效应及微污垢防治

Contact Guidance Effect and Prevention of Microfouling on a Beta Titanium Alloy Surface Structured by Electron-Beam Technology.

作者信息

Ferraris Sara, Warchomicka Fernando, Barberi Jacopo, Cochis Andrea, Scalia Alessandro Calogero, Spriano Silvia

机构信息

Department of Applied Science and Technology, Politecnico di Torino, 10129 Torino, Italy.

Institute of Materials Science, Joining and Forming, Graz University of Technology, A-8010 GRAZ, Austria.

出版信息

Nanomaterials (Basel). 2021 Jun 2;11(6):1474. doi: 10.3390/nano11061474.

Abstract

Nano- and micro-structuring of implantable materials constitute a promising approach to introduce mechanical contact guidance effect, drive cells colonization, as well as to prevent bacteria adhesion and biofilm aggregation, through antifouling topography. Accordingly, this paper aims to extend the application of e-beam surface texturing and nano-structuring to the beta titanium alloys, which are of great interest for biomedical implants because of the low Young modulus and the reduction of the stress shielding effect. The paper shows that surface texturing on the micro-scale (micro-grooves) is functional to a contact guidance effect on gingival fibroblasts. Moreover, nano-structuring, derived from the e-beam surface treatment, is effective to prevent microfouling. In fact, human fibroblasts were cultivated directly onto grooved specimens showing to sense the surface micro-structure thus spreading following the grooves' orientation. Moreover, colonies adhesion was prevented by the nano-topographies in comparison to the mirror-polished control, thus demonstrating promising antifouling properties. Furthermore, the research goes into detail to understand the mechanism of microfouling prevention due to nano-topography and microstructure.

摘要

可植入材料的纳米和微结构化是一种很有前景的方法,可通过防污表面形貌引入机械接触导向效应、驱动细胞定植,并防止细菌粘附和生物膜聚集。因此,本文旨在将电子束表面纹理化和纳米结构化的应用扩展到β钛合金,由于其低杨氏模量和应力屏蔽效应的降低,β钛合金在生物医学植入物方面具有很大的应用价值。本文表明,微尺度(微槽)的表面纹理化对牙龈成纤维细胞具有接触导向作用。此外,电子束表面处理产生的纳米结构化可有效防止微污染。事实上,人类成纤维细胞直接培养在有沟槽的标本上,结果表明细胞能够感知表面微观结构,并沿沟槽方向铺展。此外,与镜面抛光的对照组相比,纳米拓扑结构可防止菌落粘附,从而证明了其良好的防污性能。此外,该研究还深入探讨了纳米拓扑结构和微观结构防止微污染的机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2697/8227382/89a57c615db3/nanomaterials-11-01474-g001.jpg

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