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用于对抗生物膜感染的多功能纳米材料。

Versatile nanomaterials used in combatting biofilm infections.

作者信息

Wang Chenlong, Shahriar S M Shatil, Su Yajuan, Xie Jingwei

机构信息

Department of Surgery-Transplant and Mary & Dick Holland Regenerative Medicine Program, College of Medicine, University of Nebraska Medical Center, Omaha, NE, USA.

Department of Mechanical and Materials Engineering, University of Nebraska Lincoln, Lincoln, NE, USA.

出版信息

Nanomedicine (Lond). 2025 Mar;20(5):501-518. doi: 10.1080/17435889.2025.2459049. Epub 2025 Jan 31.

Abstract

Microbial infections are a pressing global health issue, exacerbated by the rise of antibiotic-resistant bacteria due to widespread antibiotic overuse. This resistance diminishes the effectiveness of current treatments, intensifying the need for new antimicrobial agents and innovative drug delivery strategies. Nanotechnology presents promising solutions, leveraging the unique properties of nanomaterials such as tunable optical and electronic characteristics, nanoscale size, and high surface-to-volume ratios. These features enhance their effectiveness as innovative antimicrobial agents and versatile drug delivery systems. This minireview classifies antimicrobial nanomaterials into four categories based on their mechanisms of action: thermal generation, reactive oxygen species generation, gas generation, and nanocarrier systems such as liposomes, polymersomes, and metal-organic frameworks. Uniquely, this review integrates a comparative analysis of these mechanisms, highlighting their relative advantages, limitations, and applications across diverse microbial targets. Additionally, it identifies emerging trends in the field, providing a forward-looking perspective on how recent advancements in nanotechnology can be leveraged to address unmet clinical needs. Finally, this article discusses future directions and emerging opportunities in antimicrobial nanotechnology.

摘要

微生物感染是一个紧迫的全球健康问题,由于抗生素的广泛过度使用导致抗生素耐药菌的增加,这一问题更加恶化。这种耐药性降低了当前治疗方法的有效性,加大了对新型抗菌剂和创新药物递送策略的需求。纳米技术提供了有前景的解决方案,利用了纳米材料的独特性质,如可调谐的光学和电子特性、纳米级尺寸以及高表面积与体积比。这些特性增强了它们作为创新抗菌剂和多功能药物递送系统的有效性。这篇综述将抗菌纳米材料根据其作用机制分为四类:热产生、活性氧产生、气体产生以及纳米载体系统,如脂质体、聚合物囊泡和金属有机框架。独特的是,这篇综述对这些机制进行了比较分析,突出了它们的相对优势、局限性以及在不同微生物靶点中的应用。此外,它还确定了该领域的新兴趋势,为如何利用纳米技术的最新进展来满足未满足的临床需求提供了前瞻性的视角。最后,本文讨论了抗菌纳米技术的未来方向和新兴机遇。

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