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抗菌肽与用于抵抗微生物感染的大分子:从药物到界面。

Antimicrobial Peptides and Macromolecules for Combating Microbial Infections: From Agents to Interfaces.

机构信息

Frontiers Science Center for Flexible Electronics (FSCFE), Xi'an Institute of Flexible Electronics (IFE) and Xi'an Institute of Biomedical Materials & Engineering (IBME), Northwestern Polytechnical University, 127 West Youyi Road, Xi'an 710072, China.

出版信息

ACS Appl Bio Mater. 2022 Feb 21;5(2):366-393. doi: 10.1021/acsabm.1c01132. Epub 2022 Jan 24.

Abstract

Bacterial resistance caused by the overuse of antibiotics and the shelter of biofilms has evolved into a global health crisis, which drives researchers to continuously explore antimicrobial molecules and strategies to fight against drug-resistant bacteria and biofilm-associated infections. Cationic antimicrobial peptides (AMPs) are considered to be a category of potential alternative for antibiotics owing to their excellent bactericidal potency and lesser likelihood of inducing drug resistance through their distinctive antimicrobial mechanisms. In this review, the hitherto reported plentiful action modes of AMPs are systematically classified into 15 types and three categories (membrane destructive, nondestructive membrane disturbance, and intracellular targeting mechanisms). Besides natural AMPs, cationic polypeptides, synthetic polymers, and biopolymers enable to achieve tunable antimicrobial properties by optimizing their structures. Subsequently, the applications of these cationic antimicrobial agents at the biointerface as contact-active surface coatings and multifunctional wound dressings are also emphasized here. At last, we provide our perspectives on the development of clinically significant cationic antimicrobials and related challenges in the translation of these materials.

摘要

由于抗生素的过度使用和生物膜的庇护,细菌产生了耐药性,这已演变成一场全球健康危机,促使研究人员不断探索抗菌分子和策略,以对抗耐药菌和生物膜相关感染。阳离子抗菌肽 (AMPs) 因其出色的杀菌效力和通过独特的抗菌机制引起耐药性的可能性较小,被认为是抗生素的潜在替代品之一。在这篇综述中,迄今为止报道的 AMPs 的大量作用模式被系统地分为 15 种类型和 3 种类别(破坏膜、非破坏性膜干扰和细胞内靶向机制)。除了天然 AMPs 之外,阳离子多肽、合成聚合物和生物聚合物通过优化其结构能够实现可调的抗菌性能。随后,还强调了这些阳离子抗菌剂在生物界面作为接触活性表面涂层和多功能伤口敷料的应用。最后,我们对临床意义重大的阳离子抗菌剂的发展以及这些材料转化中的相关挑战提出了看法。

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