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Nanoscience‐Based Strategies to Engineer Antimicrobial Surfaces

机译:基于纳米科学的抗菌表面工程策略

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摘要

Microbial contamination and biofilm formation of medical devices is a major issue associated with medical complications and increased costs. Consequently, there is a growing need for novel strategies and exploitation of nanoscience‐based technologies to reduce the interaction of bacteria and microbes with synthetic surfaces. This article focuses on surfaces that are nanostructured, have functional coatings, and generate or release antimicrobial compounds, including “smart surfaces” producing antibiotics on demand. Key requirements for successful antimicrobial surfaces including biocompatibility, mechanical stability, durability, and efficiency are discussed and illustrated with examples of the recent literature. Various nanoscience‐based technologies are described along with new concepts, their advantages, and remaining open questions. Although at an early stage of research, nanoscience‐based strategies for creating antimicrobial surfaces have the advantage of acting at the molecular level, potentially making them more efficient under specific conditions. Moreover, the interface can be fine tuned and specific interactions that depend on the location of the device can be addressed. Finally, remaining important challenges are identified: improvement of the efficacy for long‐term use, extension of the application range to a large spectrum of bacteria, standardized evaluation assays, and combination of passive and active approaches in a single surface to produce multifunctional surfaces.
机译:医疗器械的微生物污染和生物膜形成是与医疗并发症和成本增加相关的主要问题。因此,人们越来越需要新颖的策略和基于纳米科学的技术的开发,以减少细菌和微生物与合成表面的相互作用。本文重点介绍纳米结构的表面,具有功能性涂层并产生或释放抗菌化合物的表面,包括“智能表面”,可根据需要生产抗生素。讨论成功微生物表面的关键要求,包括生物相容性,机械稳定性,耐用性和效率,并以最新文献为例进行说明。描述了各种基于纳米科学的技术以及新概念,它们的优点和尚待解决的问题。尽管在研究的早期阶段,用于创建抗菌表面的基于纳米科学的策略仍具有在分子水平上起作用的优势,这可能使其在特定条件下更为有效。而且,可以对接口进行微调,并且可以解决依赖于设备位置的特定交互。最后,还确定了仍然存在的重要挑战:提高长期使用的功效,将应用范围扩展到大范围的细菌,标准化的评估测定,以及在单个表面上组合使用被动和主动方法以生产多功能表面。

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