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基于石墨烯的复合纳米材料的抗菌机制。

Antibacterial mechanisms of graphene-based composite nanomaterials.

机构信息

Department of Chemistry and Biochemistry, University of California, 1156 High Street, Santa Cruz, California 95064, USA.

Department of Microbiology and Environmental Toxicology, University of California, 1156 High Street, Santa Cruz, California 95064, USA.

出版信息

Nanoscale. 2017 Jan 19;9(3):994-1006. doi: 10.1039/c6nr08733g.

Abstract

Pathogenic bacteria are gaining resistance to conventional antibiotics at an alarming rate due to overuse and rapid transfer of resistance genes between bacterial populations. As bacterial resistance to antibiotics causes millions of fatalities worldwide, it is of urgent importance to develop a new class of antibiotic materials with both broad-spectrum bactericidal activity and suitable biocompatibility. Graphene derivatives are rapidly emerging as an extremely promising class of antimicrobial materials due to their diverse bactericidal mechanisms and relatively low cytotoxicity towards mammalian cells. By combining graphene derivatives with currently utilized antibacterial metal and metal-oxide nanostructures, composite materials with exceptional bactericidal activity can be achieved. In this review, the antibacterial activities of graphene derivatives as well as their metal and metal-oxide composite nanostructures will be presented. The synthetic methodology for these various materials will be briefly mentioned, and emphasis will be placed on the evaluation of their mechanisms of action. This information will provide a valuable insight into the current understanding of the interactions governing the microbial toxicity of graphene-based composite nanostructures.

摘要

由于抗生素的过度使用和耐药基因在细菌种群间的快速转移,致病菌对传统抗生素的耐药性正以惊人的速度上升。由于细菌对抗生素的耐药性导致了全世界数百万人的死亡,因此开发一类具有广谱杀菌活性和适宜生物相容性的新型抗生素材料迫在眉睫。由于其多样化的杀菌机制和对哺乳动物细胞相对较低的细胞毒性,石墨烯衍生物迅速成为一类极有前途的抗菌材料。通过将石墨烯衍生物与目前使用的抗菌金属和金属氧化物纳米结构相结合,可以获得具有优异杀菌活性的复合材料。在这篇综述中,将介绍石墨烯衍生物及其金属和金属氧化物复合纳米结构的抗菌活性。将简要提及这些各种材料的合成方法,并重点评估它们的作用机制。这些信息将为深入了解基于石墨烯的复合纳米结构的微生物毒性的作用机制提供有价值的见解。

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