Magneto-Catalytic Janus Micromotors for Selective Inactivation of Bacteria Biofilms

B. Jurado‐Sánchez, A. Escarpa, Kaisong Yuan
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Abstract

Janus micromotors are a unique class of materials whose surfaces have two or more distinct physical properties, allowing thus for two types of chemistry to occur simultaneously. Judicious design of the micromotor structure allows to incorporate different functionalities in a single unit to adapt the propulsion behaviour along with the incorporation of specific receptors for a myriad of applications. Herein we report the preparation of graphene oxide (GO)/PtNPs/Fe2O3 Janus micromotors for highly selective capture/inactivation of gram-positive bacteria units and biofilms. The strategy is based on the combination of a lanbiotic (Nisin) with Janus micromotors. Lanbiotics are peptides composed of methyllanthionine residues with a highly selective antimicrobial activity towards multidrug resistant bacteria. Nisin is a natural compound normally used for food preservation, which display specific antimicrobial activity towards gram-positive bacteria. Such peptide can bind to lipid II unit of the bacteria membranes, damaging its morphology and releasing its contents. The coating of micromotors with GO impart them with a Janus structure for the subsequent asymmetric assembly of catalytic (PtNPs) and magnetic (Fe2O3) engines and results in an active rough layer for a higher loading of Nisin via covalent interactions. The micromotors possess adaptative propulsion mechanisms, including catalytic mode (PtNPs) in peroxide solutions or magnetic actuation (fuel free) by the action of an external magnetic field. The enhanced movement and localized delivery of the micromotors (both in catalytic and magnetic actuated mode) results in a 2-fold increase of the capture/killing ability towards Staphylococcus Aureus bacteria in raw media (juice, serum and tap water samples), as compared with free Nisin and static counterparts. The micromotor strategy display also high selectivity towards such bacteria, as illustrated by the dramatically lower capture/killing ability towards gram-negative Escherichia Coli. Unlike previous micromotors based strategies, this approach displays higher selectivity towards a type of bacteria along with enhanced stability, prolonged use and adaptative propulsion modes, holding considerable promise to treat methicillin resistant antibiotic infections, for environmental remediation or food safety, among others applications.
用于细菌生物膜选择性失活的磁催化Janus微电机
Janus微电机是一类独特的材料,其表面具有两种或两种以上不同的物理特性,从而允许两种化学反应同时发生。微电机结构的明智设计允许在单个单元中合并不同的功能,以适应推进行为以及针对无数应用的特定受体的合并。在这里,我们报道了氧化石墨烯(GO)/PtNPs/Fe2O3 Janus微电机的制备,用于高选择性捕获/灭活革兰氏阳性细菌单位和生物膜。该策略是基于lanbitics (Nisin)和Janus微型马达的结合。Lanbiotics是由甲基硫氨酸残基组成的多肽,对多重耐药细菌具有高度选择性的抗菌活性。Nisin是一种天然化合物,通常用于食品保存,对革兰氏阳性细菌具有特定的抗菌活性。这种肽可以与细菌膜的脂质II单元结合,破坏其形态并释放其内容物。在微马达表面涂上氧化石墨烯,使其具有双面神结构,用于随后的催化(PtNPs)和磁性(Fe2O3)发动机的不对称组装,并形成一个活性粗糙层,通过共价相互作用使Nisin负载更高。微电机具有自适应推进机制,包括过氧化氢溶液中的催化模式(PtNPs)或由外部磁场作用的磁致动(无燃料)。与游离Nisin和静态同类产品相比,微电机的增强运动和局部递送(在催化和磁驱动模式下)导致对原始培养基(果汁,血清和自来水样品)中金黄色葡萄球菌的捕获/杀死能力提高了2倍。微运动策略对这种细菌也显示出很高的选择性,如对革兰氏阴性大肠杆菌的捕获/杀死能力显着降低所示。与以前基于微电机的策略不同,该方法对一种细菌具有更高的选择性,同时具有增强的稳定性,长时间使用和自适应推进模式,在治疗耐甲氧西林抗生素感染,环境修复或食品安全等应用中具有相当大的前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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