纳米柱状纳米结构表面细菌死亡机制综述。

IF 3.7 Q1 BIOPHYSICS
Biophysical reviews Pub Date : 2025-05-20 eCollection Date: 2025-06-01 DOI:10.1007/s12551-025-01319-5
Dimuthu Wijethunge, Asha Mathew, Prasad K D V Yarlagadda
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引用次数: 0

摘要

抗生素耐药性是全球关注的一个重大问题,由于过度使用和新抗生素开发有限而恶化。尤其是医疗植入物,越来越容易受到细菌感染。为了防止在植入物上形成生物膜,必须设计专门的表面特性来杀死细菌或抑制它们的生长。类似于自然界中发现的纳米结构,如蝉的翅膀,表现出明显的抗菌功效。从这些自然表面得到灵感,具有相似特征的人造纳米结构已经证明了杀菌效果。纳米结构的杀菌机制可能看起来很简单,因为纳米特征可以穿透细菌细胞,导致它们死亡。然而,研究表明,它更复杂,需要彻底的调查。一些研究表明,虽然杀菌机制是由机械接触启动的,但精确的杀灭过程仍然不确定。大量的实验和理论研究旨在阐明确切的杀伤机制,得出了不同的结论和假设,包括由蠕变失败导致的细胞死亡、运动诱导的剪切失败、凋亡诱导的程序性细胞死亡和自溶性细胞死亡等。本研究对所有提出的死亡机制进行了全面审查。此外,通过仔细分析细菌膜的特性、机械传感和粘附机制、细菌粘附的能量模型以及不同几何形状表面的杀菌效果的实验结果,得出了杀死机制的结论。图形化的简介:
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Comprehensive review of bacterial death mechanism on nanopillared nanostructured surfaces.

Comprehensive review of bacterial death mechanism on nanopillared nanostructured surfaces.

Comprehensive review of bacterial death mechanism on nanopillared nanostructured surfaces.

Comprehensive review of bacterial death mechanism on nanopillared nanostructured surfaces.

Antibiotic resistance presents a significant global concern, worsened by overuse and limited development of new antibiotics. Medical implants, in particular, are increasingly susceptible to bacterial infections. To prevent biofilm formation on implants, it is essential to design specialized surface characteristics that either kill bacteria or inhibit their growth. Nanostructures resembling those found in nature, such as cicada wings, exhibit pronounced antibacterial efficacy. Drawing inspiration from these natural surfaces, artificial nanostructures made with similar features have demonstrated bactericidal effect. The bactericidal mechanism in nanostructures may seem simple, as the nanofeatures pierce through bacterial cells, leading to their death. However, research has shown that it is more complex and requires thorough investigation. Several studies indicate that while the bactericidal mechanism is initiated by mechanical contact, the precise killing process remains uncertain. Numerous experimental and theoretical investigations have aimed to elucidate the exact killing mechanism, yielding diverse conclusions and hypotheses, including cell death attributed to creep failure, motion-induced shear failure, apoptosis-induced programmed cell death and autolytic cell death, among others. This study undertakes a comprehensive review of all proposed death mechanisms. Moreover, it draws conclusions on the killing mechanism by meticulously analyzing the properties of bacterial membranes, their mechanosensing and adhesion mechanisms, energy-based models for bacterial adhesion, and experimental outcomes regarding the bactericidal efficacy of surfaces exhibiting diverse geometries.

Graphical abstract:

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来源期刊
Biophysical reviews
Biophysical reviews Biochemistry, Genetics and Molecular Biology-Biophysics
CiteScore
8.90
自引率
0.00%
发文量
93
期刊介绍: Biophysical Reviews aims to publish critical and timely reviews from key figures in the field of biophysics. The bulk of the reviews that are currently published are from invited authors, but the journal is also open for non-solicited reviews. Interested authors are encouraged to discuss the possibility of contributing a review with the Editor-in-Chief prior to submission. Through publishing reviews on biophysics, the editors of the journal hope to illustrate the great power and potential of physical techniques in the biological sciences, they aim to stimulate the discussion and promote further research and would like to educate and enthuse basic researcher scientists and students of biophysics. Biophysical Reviews covers the entire field of biophysics, generally defined as the science of describing and defining biological phenomenon using the concepts and the techniques of physics. This includes but is not limited by such areas as: - Bioinformatics - Biophysical methods and instrumentation - Medical biophysics - Biosystems - Cell biophysics and organization - Macromolecules: dynamics, structures and interactions - Single molecule biophysics - Membrane biophysics, channels and transportation
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