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通过冷等离体协同作用增强抗菌活性和植物次生代谢物:机遇与挑战。

Enhanced Antimicrobial Activity through Synergistic Effects of Cold Atmospheric Plasma and Plant Secondary Metabolites: Opportunities and Challenges.

机构信息

School of Engineering, College of Engineering, Computing and Cybernetics, The Australian National University, Canberra, ACT 2600, Australia.

Plasma Sources and Application Centre, NIE, Nanyang Technological University, Singapore 637616, Singapore.

出版信息

Molecules. 2023 Nov 8;28(22):7481. doi: 10.3390/molecules28227481.

Abstract

The emergence of antibiotic resistant microorganisms possesses a great threat to human health and the environment. Considering the exponential increase in the spread of antibiotic resistant microorganisms, it would be prudent to consider the use of alternative antimicrobial agents or therapies. Only a sustainable, sustained, determined, and coordinated international effort will provide the solutions needed for the future. Plant secondary metabolites show bactericidal and bacteriostatic activity similar to that of conventional antibiotics. However, to effectively eliminate infection, secondary metabolites may need to be activated by heat treatment or combined with other therapies. Cold atmospheric plasma therapy is yet another novel approach that has proven antimicrobial effects. In this review, we explore the physiochemical mechanisms that may give rise to the improved antimicrobial activity of secondary metabolites when combined with cold atmospheric plasma therapy.

摘要

抗生素耐药微生物的出现对人类健康和环境构成了巨大威胁。考虑到抗生素耐药微生物的传播呈指数级增长,明智的做法是考虑使用替代抗菌剂或疗法。只有可持续、持续、坚定和协调的国际努力才能为未来提供所需的解决方案。植物次生代谢物具有类似传统抗生素的杀菌和抑菌活性。然而,为了有效消除感染,次生代谢物可能需要通过热处理激活或与其他疗法联合使用。冷等离体等离子体疗法是另一种具有抗菌作用的新方法。在这篇综述中,我们探讨了可能导致次生代谢物与冷等离体等离子体疗法联合使用时抗菌活性提高的理化机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/047c/10673009/a2c17fd90878/molecules-28-07481-g002.jpg

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