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蜻蜓翅膀的天然纳米形貌对大肠杆菌的杀菌作用。

Bactericidal Effects of Natural Nanotopography of Dragonfly Wing on Escherichia coli.

机构信息

School of Chemistry, Physics and Mechanical Engineering, Science and Engineering Faculty, Queensland University of Technology (QUT) , Brisbane, Queensland 4001, Australia.

Institute for Health and Biomedical Innovation (IHBI), Queensland University of Technology (QUT) , Kelvin Grove, Queensland 4059, Australia.

出版信息

ACS Appl Mater Interfaces. 2017 Mar 1;9(8):6746-6760. doi: 10.1021/acsami.6b13666. Epub 2017 Feb 16.

Abstract

Nanotextured surfaces (NTSs) are critical to organisms as self-adaptation and survival tools. These NTSs have been actively mimicked in the process of developing bactericidal surfaces for diverse biomedical and hygiene applications. To design and fabricate bactericidal topographies effectively for various applications, understanding the bactericidal mechanism of NTS in nature is essential. The current mechanistic explanations on natural bactericidal activity of nanopillars have not utilized recent advances in microscopy to study the natural interaction. This research reveals the natural bactericidal interaction between E. coli and a dragonfly wing's (Orthetrum villosovittatum) NTS using advanced microscopy techniques and proposes a model. Contrary to the existing mechanistic models, this experimental approach demonstrated that the NTS of Orthetrum villosovittatum dragonfly wings has two prominent nanopillar populations and the resolved interface shows membrane damage occurred without direct contact of the bacterial cell membrane with the nanopillars. We propose that the bacterial membrane damage is initiated by a combination of strong adhesion between nanopillars and bacterium EPS layer as well as shear force when immobilized bacterium attempts to move on the NTS. These findings could help guide the design of novel biomimetic nanomaterials by maximizing the synergies between biochemical and mechanical bactericidal effects.

摘要

纳米纹理表面(NTS)是生物体自我适应和生存的关键工具。在开发用于各种生物医学和卫生应用的杀菌表面的过程中,这些 NTS 被积极模仿。为了有效地设计和制造杀菌形貌,了解 NTS 在自然界中的杀菌机制至关重要。目前关于纳米柱自然杀菌活性的机械解释尚未利用显微镜的最新进展来研究自然相互作用。这项研究使用先进的显微镜技术揭示了大肠杆菌与蜻蜓翅膀(Orthetrum villosovittatum)NTS 之间的自然杀菌相互作用,并提出了一个模型。与现有机械模型相反,这种实验方法表明,Orthetrum villosovittatum 蜻蜓翅膀的 NTS 具有两种突出的纳米柱种群,解析的界面显示细胞膜损伤发生时,细菌细胞膜与纳米柱没有直接接触。我们提出,细菌细胞膜损伤是由纳米柱与细菌 EPS 层之间的强附着力以及当固定细菌试图在 NTS 上移动时产生的剪切力共同作用引发的。这些发现可以通过最大限度地提高生化和机械杀菌效果之间的协同作用,帮助指导新型仿生纳米材料的设计。

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