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偶氮苯作为抗菌分子。

Azobenzene as Antimicrobial Molecules.

机构信息

Department of Pharmacy, University of Salerno, Via Giovanni Paolo II, 132, 84084 Fisciano, Italy.

Department of Agriculture, University of Napoli Federico II, 80126 Naples, Italy.

出版信息

Molecules. 2022 Sep 1;27(17):5643. doi: 10.3390/molecules27175643.

Abstract

Azo molecules, characterized by the presence of a -N=N- double bond, are widely used in various fields due to their sensitivity to external stimuli, ch as light. The emergence of bacterial resistance has pushed research towards designing new antimicrobial molecules that are more efficient than those currently in use. Many authors have attempted to exploit the antimicrobial activity of azobenzene and to utilize their photoisomerization for selective control of the bioactivities of antimicrobial molecules, which is necessary for antibacterial therapy. This review will provide a systematic and consequential approach to coupling azobenzene moiety with active antimicrobial molecules and drugs, including small and large organic molecules, such as peptides. A selection of significant cutting-edge articles collected in recent years has been discussed, based on the structural pattern and antimicrobial performance, focusing especially on the photoactivity of azobenzene and the design of smart materials as the most targeted and desirable application.

摘要

偶氮分子的特点是存在-N=N-双键,由于它们对外界刺激(如光)的敏感性,被广泛应用于各个领域。细菌耐药性的出现促使研究人员设计出比现有抗菌分子更有效的新型抗菌分子。许多作者试图利用偶氮苯的抗菌活性,并利用其光致异构化来选择性控制抗菌分子的生物活性,这对于抗菌治疗是必要的。本综述将系统地、连贯地介绍将偶氮苯部分与活性抗菌分子和药物(包括小分子和大分子有机分子,如肽)偶联的方法。根据结构模式和抗菌性能,讨论了近年来收集的一些具有重要意义的前沿文章,特别关注偶氮苯的光活性和智能材料的设计,因为这是最有针对性和最理想的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/15a8/9457709/89b503fa07a4/molecules-27-05643-g001.jpg

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