金属纳米颗粒应力对细菌外层的影响

Oliwia Metryka, D. Wasilkowski, A. Mrozik
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摘要

纳米技术的迅速发展为21世纪的科学、技术和工业带来了革命性的变化。无机纳米颗粒由于其独特的物理化学性质,已成为各种商业和技术应用的有吸引力的材料。使用金属NPs通常与实现其杀菌和抑菌特性有关。不幸的是,具有这种便利的纳米产品的逐步生产和使用显着增加了它们释放到环境中的风险,在那里它们可能威胁到非目标微生物。不幸的是,由于缺乏适当的工具,无法区分人为来源的NPs与环境中自然产生的NPs,也无法进行全面的风险评估。因此,利用模式微生物和环境菌株进行广泛的毒理学研究来评估NPs的生物学效应是至关重要的。由于金属NPs的作用机制多样且非特异性,其杀灭生物活性的机制尚不完全清楚。然而,微生物对NPs的反应被认为是由许多细胞现象和过程介导的。首先,NPs作用于细菌细胞的外层,与表面结构相互作用,导致细胞膜完整性和通透性的改变[1,2]。关于这一主题的研究结果的差异和不一致
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Unrevealing Alterations and Disturbances in Bacterial Outer Layers in Response to Metallic Nanoparticle Stress
The rapid advancement of nanotechnology contributed to revolutionising science, technology and industry in the 21 st century. Inorganic nanoparticles (NPs), due to their unique physicochemical properties, have become attractive materials for various commercial and technological applications. Using metal NPs is most commonly associated with implementing their bactericidal and bacteriostatic properties. Unfortunately, the progressive production and use of nanoproducts with such amenities significantly increase the risk of their release into the environment, where they may threaten non-target microorganisms. Unfortunately, the lack of appropriate tools makes it impossible to distinguish NPs of anthropogenic origin from those naturally occurring in the environment and perform a full risk assessment. Therefore, extensive toxicological studies using both model microorganisms and environmental strains to evaluate the biological effects of NPs are of utmost importance. The mechanisms responsible for the biocidal activity of metallic NPs are still not fully understood due to their variety and non-specific mechanisms of action. However, the response of microorganisms to NPs is believed to be mediated by numerous cellular phenomena and processes. Firstly, NPs act on the bacterial cell’s outer layers, interacting with the surface structures and leading to changes in cell membrane integrity and permeability [1,2]. The discrepancy and inconsistency of findings on this subject and the
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