The Mina and Everard Goodman Faculty of Life Sciences, Bar-Ilan University, Ramat-Gan 52900, Israel.
The Institute for Advanced Materials and Nanotechnology, Bar-Ilan University, Ramat-Gan 52900, Israel.
FEMS Microbiol Rev. 2017 May 1;41(3):302-322. doi: 10.1093/femsre/fux003.
The spread of antibiotic resistance and increasing prevalence of biofilm-associated infections is driving demand for new means to treat bacterial infection. Nanotechnology provides an innovative platform for addressing this challenge, with potential to manage even infections involving multidrug-resistant (MDR) bacteria. The current review summarizes recent progress over the last 2 years in the field of antibacterial nanodrugs, and describes their unique properties, mode of action and activity against MDR bacteria and biofilms. Biocompatibility and commercialization are also discussed. As opposed to the more common division of nanoparticles (NPs) into organic- and inorganic-based materials, this review classifies NPs into two functional categories. The first includes NPs exhibiting intrinsic antibacterial properties and the second is devoted to NPs serving as a cargo for delivering antibacterial agents. Antibacterial nanomaterials used to decorate medical devices and implants are reviewed here as well.
抗生素耐药性的传播和生物膜相关感染的日益流行,推动了人们对治疗细菌感染的新方法的需求。纳米技术为应对这一挑战提供了一个创新的平台,即使是涉及多药耐药(MDR)细菌的感染也有希望得到治疗。本文综述了过去 2 年来抗菌纳米药物领域的最新进展,描述了它们针对 MDR 细菌和生物膜的独特性质、作用模式和活性。还讨论了生物相容性和商业化问题。与更常见的将纳米颗粒(NPs)分为有机和无机材料的分类方法不同,本文将 NPs 分为两类具有内在抗菌特性的 NPs 和作为抗菌剂载体的 NPs。本文还综述了用于修饰医疗器械和植入物的抗菌纳米材料。