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解读纳米图案的间隙和可控无序在其对……的杀菌特性中的作用 。 (注:原文结尾“against.”后内容缺失)

Deciphering the Roles of Interspace and Controlled Disorder in the Bactericidal Properties of Nanopatterns against .

作者信息

Modaresifar Khashayar, Kunkels Lorenzo B, Ganjian Mahya, Tümer Nazli, Hagen Cornelis W, Otten Linda G, Hagedoorn Peter-Leon, Angeloni Livia, Ghatkesar Murali K, Fratila-Apachitei Lidy E, Zadpoor Amir A

机构信息

Department of Biomechanical Engineering, Faculty of Mechanical, Maritime, and Materials Engineering, Delft University of Technology, 2628CD Delft, The Netherlands.

Department of Imaging Physics, Faculty of Applied Sciences, Delft University of Technology, 2628CJ Delft, The Netherlands.

出版信息

Nanomaterials (Basel). 2020 Feb 18;10(2):347. doi: 10.3390/nano10020347.

Abstract

Recent progress in nano-/micro-fabrication techniques has paved the way for the emergence of synthetic bactericidal patterned surfaces that are capable of killing the bacteria via mechanical mechanisms. Different design parameters are known to affect the bactericidal activity of nanopatterns. Evaluating the effects of each parameter, isolated from the others, requires systematic studies. Here, we systematically assessed the effects of the interspacing and disordered arrangement of nanopillars on the bactericidal properties of nanopatterned surfaces. Electron beam induced deposition (EBID) was used to additively manufacture nanopatterns with precisely controlled dimensions (i.e., a height of 190 nm, a diameter of 80 nm, and interspaces of 100, 170, 300, and 500 nm) as well as disordered versions of them. The killing efficiency of the nanopatterns against Gram-positive bacteria increased by decreasing the interspace, achieving the highest efficiency of 62 ± 23% on the nanopatterns with 100 nm interspacing. By comparison, the disordered nanopatterns did not influence the killing efficiency significantly, as compared to their ordered correspondents. Direct penetration of nanopatterns into the bacterial cell wall was identified as the killing mechanism according to cross-sectional views, which is consistent with previous studies. The findings indicate that future studies aimed at optimizing the design of nanopatterns should focus on the interspacing as an important parameter affecting the bactericidal properties. In combination with controlled disorder, nanopatterns with contrary effects on bacterial and mammalian cells may be developed.

摘要

纳米/微加工技术的最新进展为合成杀菌图案化表面的出现铺平了道路,这种表面能够通过机械机制杀死细菌。已知不同的设计参数会影响纳米图案的杀菌活性。评估每个参数相对于其他参数的单独影响需要进行系统研究。在这里,我们系统地评估了纳米柱的间距和无序排列对纳米图案化表面杀菌性能的影响。电子束诱导沉积(EBID)用于增材制造具有精确控制尺寸的纳米图案(即高度为190nm、直径为80nm,间距为100、170、300和500nm)以及它们的无序版本。纳米图案对革兰氏阳性菌的杀灭效率随着间距的减小而提高,在间距为100nm的纳米图案上达到了62±23%的最高效率。相比之下,与有序的纳米图案相比,无序的纳米图案对杀灭效率没有显著影响。根据横截面视图,纳米图案直接穿透细菌细胞壁被确定为杀灭机制,这与先前的研究一致。研究结果表明,未来旨在优化纳米图案设计的研究应将间距作为影响杀菌性能的重要参数加以关注。结合可控的无序性,可能会开发出对细菌和哺乳动物细胞具有相反作用的纳米图案。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/159f/7075137/43b81607f068/nanomaterials-10-00347-g001.jpg

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