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基于金刚石的具有地形介导功能的可扩展抗菌表面方法。

A scalable approach to topographically mediated antimicrobial surfaces based on diamond.

机构信息

Conn Center for Renewable Energy Research, University of Louisville, Louisville, KY, 40292, USA.

219 Life Sciences Building, University of Louisville, Louisville, KY, 40292, USA.

出版信息

J Nanobiotechnology. 2021 Dec 28;19(1):458. doi: 10.1186/s12951-021-01218-3.

Abstract

Bio-inspired Topographically Mediated Surfaces (TMSs) based on high aspect ratio nanostructures have recently been attracting significant attention due to their pronounced antimicrobial properties by mechanically disrupting cellular processes. However, scalability of such surfaces is often greatly limited, as most of them rely on micro/nanoscale fabrication techniques. In this report, a cost-effective, scalable, and versatile approach of utilizing diamond nanotechnology for producing TMSs, and using them for limiting the spread of emerging infectious diseases, is introduced. Specifically, diamond-based nanostructured coatings are synthesized in a single-step fabrication process with a densely packed, needle- or spike-like morphology. The antimicrobial proprieties of the diamond nanospike surface are qualitatively and quantitatively analyzed and compared to other surfaces including copper, silicon, and even other diamond surfaces without the nanostructuring. This surface is found to have superior biocidal activity, which is confirmed via scanning electron microscopy images showing definite and widespread destruction of E. coli cells on the diamond nanospike surface. Consistent antimicrobial behavior is also observed on a sample prepared seven years prior to testing date.

摘要

基于高纵横比纳米结构的仿生形貌调控表面(TMS)因其通过机械破坏细胞过程而具有明显的抗菌性能,最近引起了人们的极大关注。然而,由于大多数此类表面依赖于微/纳米级制造技术,因此其可扩展性通常受到很大限制。在本报告中,介绍了一种利用金刚石纳米技术生产 TMS 的具有成本效益、可扩展和通用的方法,并利用它们来限制新兴传染病的传播。具体来说,金刚石基纳米结构涂层通过一步制造工艺合成,具有密集排列的针状或刺状形态。金刚石纳米刺表面的抗菌性能通过定性和定量分析进行了分析,并与包括铜、硅甚至没有纳米结构的其他金刚石表面在内的其他表面进行了比较。通过扫描电子显微镜图像显示出在金刚石纳米刺表面上大肠杆菌细胞明显且广泛的破坏,证实了该表面具有优越的杀菌活性。在测试日期前七年制备的样品上也观察到一致的抗菌行为。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8e07/8715600/ca5d203d3c61/12951_2021_1218_Fig1_HTML.jpg

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