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Magnetic-controlled dandelion-like nanocatalytic swarm for targeted biofilm elimination

机译:磁控dandelion-like nanocatalytic群消灭目标生物膜

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Infections caused by drug-resistant strains pose a serious threat to human health. Most bacterial infections are related to biofilms. The generation of a bacterial biofilm greatly reduces the antibacterial efficiency of antibiotics and some traditional antibacterial drugs, and it is very important to develop antibacterial drugs to replace antibiotics. Here, encouraged by the promising magnetic control technology of micro/nanorobots, the synergistic antibacterial strategy of a dandelion-like magnetically-controlled multifunctional hierarchical magnetic biomimetic nanozyme, Fe3O4@SiO2@dendritic mesoporous silica@small-Fe3O4 nanoparticles (FSDMSsF NPs), was developed to be effective against bacterial biofilms. FSDMSsF NPs showed great magnetic properties and peroxidase-like activities, and could act as catalytic carriers for the production of hydroxyl radicals that are highly toxic to bacteria in a low-concentration H2O2 environment, killing planktonic bacteria. The antibacterial rate of FSDMSsF NPs reached 99.5% at a concentration of 200 μg mL−1. The synergistic antibacterial mechanisms of the mechanical factor and the chemical factor are further discussed. Under time-varying magnetic swarm control, the antibacterial performance of FSDMSsF NPs against bacteria was significantly improved. On this basis, the elimination effect of FSDMSsF NPs on bacterial biofilms is further discussed. The results showed that FSDMSsF NPs could target and eliminate biofilms through complex channels under the control of magnetic fields. In addition, the system could remove biofilms in occlusions by changing the morphology and movement mode of an FSDMSsF NP swarm under magnetic field control. The current work proposes a facile and physical–chemical synergistic strategy for effective antibacterial therapy. FSDMSsF NPs could effectively kill planktonic bacteria and remove stubborn biofilms through magnetic field guidance, achieving thorough antibacterial efficacy, which has great potential in the treatment of drug-resistant bacterial infections.
机译:耐药菌株引起的感染造成严重威胁人类健康。生物膜感染有关。代的细菌生物膜大大减少抗生素和抗菌效率一些传统的抗菌药物,开发抗菌药物非常重要取代抗生素。有前途的磁控技术微/纳米机器人,协同抗菌战略的dandelion-likemagnetically-controlled多功能分层磁仿生nanozymeFe3O4@SiO2@dendritic介孔开发有效对抗细菌生物膜。属性和peroxidase-like活动,可以作为催化载体的吗生产的羟基自由基的高度有毒的细菌在低浓度的过氧化氢环境,造成浮游细菌。FSDMSsF NPs抗菌率达到99.5%浓度为200μg毫升−1。协同抗菌机制机械因素和化学因素进一步的讨论。群控制的抗菌性能FSDMSsF NPs与细菌明显改善。进一步FSDMSsF NPs对细菌生物膜的进行了讨论。目标和消除生物膜通过吗复杂的通道的控制下磁字段。生物膜在遮挡通过改变形态和运动模式下FSDMSsF NP群磁场控制。肤浅和理化协同策略有效的抗菌药物治疗。FSDMSsF NPs能有效地杀死浮游细菌和生物膜去除顽固磁场引导,实现彻底的抗菌功效,有很大潜力治疗耐药细菌感染。

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