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动态组装磁性纳米链作为影响生物膜完整性的新一代群体型磁机械纳米机器人

Dynamically Assembling Magnetic Nanochains as New Generation of Swarm-Type Magneto-Mechanical Nanorobots Affecting Biofilm Integrity.

作者信息

Kralj Slavko, Da Silva Charlotte, Nemec Sebastjan, Caf Maja, Fourquaux Isabelle, Rols Marie-Pierre, Golzio Muriel, Mertelj Alenka, Kolosnjaj-Tabi Jelena

机构信息

Jožef Stefan Institute, Jamova cesta 39, Ljubljana, 1000, Slovenia.

Faculty of Pharmacy, University of Ljubljana, Aškerčeva cesta 7, Ljubljana, 1000, Slovenia.

出版信息

Adv Healthc Mater. 2025 Mar;14(6):e2403736. doi: 10.1002/adhm.202403736. Epub 2025 Jan 5.

Abstract

Bacterial resistance is gaining ground and novel, unconventional strategies are required to improve antibiotic treatments. As a synthetic analog of planktonic bacilli, the natural bacterial swimmers that can penetrate bacterial biofilms, ultra-short propelling magnetic nanochains are presented as bioinspired magnetic nanorobots, enhancing the antibiotic treatment in biofilm-forming Staphylococcus epidermidis. Propelling nanochains, activated by a low intensity (<20 mT) and low frequency (<10 Hz) rotating magnetic field (RMF), prompt the otherwise resistant biofilm-forming bacteria to become sensitive to methicillin, resulting in the killing of 99.99% of bacteria. While magnetic force-driven spherical magnetic nanoparticles were previously reported as unidirectional biofilm channel diggers, propelling nanochains emerge as second-generation magnetic nanorobots, which, due to their magnetic core, shape anisotropy, and negative zeta potential, combine magnetic responsiveness, torque-driven movement, and attractive electrostatic interactions to attach to bacterial aggregates and multi-directionally protrude throughout the biofilm, indulging mechanical forces. These synergistic effects, in combination with an antibiotic drug, destroy the bacterial extracellular matrix and eradicate the formed biofilm, as confirmed with several complementary techniques.

摘要

细菌耐药性正在增强,需要新的、非常规策略来改善抗生素治疗。作为浮游杆菌的合成类似物,能够穿透细菌生物膜的天然细菌游动体,超短推进磁性纳米链作为受生物启发的磁性纳米机器人被提出,可增强对形成生物膜的表皮葡萄球菌的抗生素治疗。由低强度(<20 mT)和低频(<10 Hz)旋转磁场(RMF)激活的推进纳米链,促使原本耐药的形成生物膜的细菌对甲氧西林敏感,导致99.99%的细菌被杀死。虽然之前报道磁力驱动的球形磁性纳米颗粒是单向生物膜通道挖掘器,但推进纳米链作为第二代磁性纳米机器人出现,由于其磁芯、形状各向异性和负ζ电位,结合了磁响应性、扭矩驱动运动和有吸引力的静电相互作用,附着于细菌聚集体并在整个生物膜中多向突出,施加机械力。这些协同效应与抗生素药物相结合,破坏细菌细胞外基质并根除形成的生物膜,这已通过多种互补技术得到证实。

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