Key Laboratory of Resource Biology and Biotechnology in Western China, Ministry of Education, Faculty of Life Science and Medicine, Northwest University, Xi'an, 710069, P. R. China.
CAS Key Laboratory for Biomedical Effects of Nanomaterials and Nanosafety and CAS Center for Excellence in Nanoscience, National Center for Nanoscience and Technology of China, University of Chinese Academy of Sciences, Beijing, 100190, P. R. China.
Small. 2024 Feb;20(7):e2306135. doi: 10.1002/smll.202306135. Epub 2023 Oct 6.
Biofilm is a spatially organized community formed by the accumulation of both microorganisms and their secretions, leading to persistent and chronic infections because of high resistance toward conventional antibiotics. In view of the tunable physicochemical properties and the related unique biological behavior (e.g., size-, shape-, and surface charge-dependent penetration, protein corona endowed targeting, catalytic- and electronic-related oxidative stress, optical- and magnetic-associated hyperthermia, etc.), nanomaterials-based therapeutics are widely used for the treatment of biofilm-associated infections. In this review, the biological characteristics of biofilm are introduced. And the nanomaterials-based antibacterial strategies are further discussed via biofilm targeting, including preventing biofilm formation, enhancing biofilm penetration, disrupting the mature biofilm, and acting as drug delivery systems. In which, the interactions between biofilm and nanomaterials include mechanical disruption, electron transfer, enzymatic degradation, oxidative stress, and hyperthermia. Additionally, the current advances of nanomaterials for antibacterial nanomaterials by biofilm targeting are summarized. This review aims to present a complete vision of antibacterial nanomaterials-biofilm (nano-bio) interactions, paving the way for the future development and clinical translation of effective antibacterial nanomedicines.
生物膜是由微生物及其分泌物积累形成的空间组织群落,由于对传统抗生素具有高抗性,导致持续性和慢性感染。鉴于可调物理化学性质和相关独特的生物行为(例如,大小、形状和表面电荷依赖性穿透、赋予靶向的蛋白质冠、催化和电子相关的氧化应激、光和磁相关的热疗等),基于纳米材料的疗法被广泛用于治疗与生物膜相关的感染。在这篇综述中,介绍了生物膜的生物学特性。并通过生物膜靶向进一步讨论了基于纳米材料的抗菌策略,包括预防生物膜形成、增强生物膜穿透、破坏成熟生物膜和作为药物递送系统。其中,生物膜与纳米材料之间的相互作用包括机械破坏、电子转移、酶降解、氧化应激和热疗。此外,还总结了目前通过生物膜靶向用于抗菌纳米材料的纳米材料的进展。本综述旨在呈现抗菌纳米材料-生物膜(纳米-生物)相互作用的完整视角,为有效抗菌纳米药物的未来发展和临床转化铺平道路。