氧化铁纳米粒子
生物膜
纳米技术
磁性纳米粒子
材料科学
氧化铁
纳米颗粒
生物相容性
纳米尺度
磁铁矿
磁性
纳米机器人学
趋磁细菌
纳米生物技术
氧化物
纳米材料
胞外聚合物
磁铁
生物相容性材料
纳米复合材料
作者
Maja Caf,Parvaneh Esmaeilnejad-Ahranjani,Kolosnjaj-Tabi Jelena,Jerica Sabotič,Aleš Berlec,Nika Zaveršek,Stane Pajk,Abida Zahirović,Muriel Golzio,Irena Milošević,Slavko Kralj
出处
期刊:ACS Nano
[American Chemical Society]
日期:2026-01-01
标识
DOI:10.1021/acsnano.5c14390
摘要
Biofilms, structured communities of microbial cells embedded in extracellular polymeric substances, are notorious for their resilience against conventional antimicrobial treatments. They contribute significantly to chronic infections and industrial biofouling, necessitating innovative strategies for their eradication. Magnetic iron oxide nanoparticles have emerged as a promising tool in combating biofilms due to their biocompatibility and unique physicochemical properties, which enable magnetic delivery of antibacterial agents, magnetic hyperthermia, magneto-mechanical actuation including mechanical biofilm disruption, and reversible dynamic magnetic assembly into hierarchical structures. This review describes developing stages of magnetic nanoscale weapons against biofilms ranging from individual iron oxide nanoparticles to complex hierarchical nanoparticle assemblies in the form of magnetic robots and their swarms. A vast array of possible antibiofilm and antibacterial functionalities originating from iron ions, individual iron oxide nanoparticles, spherical nanoparticle assemblies, magnetic robots, and swarms of robots are presented. Magnetic nanotools offer significant improvements and advantages over conventional methods for biofilm eradication, yet their successful future applications depend on addressing and overcoming critical material, biological, and engineering challenges.
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