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双组分系统GacS/GacA,一种细菌生理行为的全局响应调节因子。

Two-component system GacS/GacA, a global response regulator of bacterial physiological behaviors.

作者信息

Song Huihui, Li Yuying, Wang Yan

机构信息

College of Marine Life Sciences, Ocean University of China, Qingdao 266003, China.

Laboratory for Marine Ecology and Environmental Science, Qingdao National Laboratory for Marine Science and Technology, Qingdao 266071, China.

出版信息

Eng Microbiol. 2022 Oct 5;3(1):100051. doi: 10.1016/j.engmic.2022.100051. eCollection 2023 Mar.

Abstract

The signal transduction system of microorganisms helps them adapt to changes in their complex living environment. Two-component system (TCS) is a representative signal transduction system that plays a crucial role in regulating cellular communication and secondary metabolism. In Gram-negative bacteria, an unorthodox TCS consisting of histidine kinase protein GacS (initially called LemA) and response regulatory protein GacA is widespread. It mainly regulates various physiological activities and behaviors of bacteria, such as quorum sensing, secondary metabolism, biofilm formation and motility, through the Gac/Rsm (Regulator of secondary metabolism) signaling cascade pathway. The global regulatory ability of GacS/GacA in cell physiological activities makes it a potential research entry point for developing natural products and addressing antibiotic resistance. In this review, we summarize the progress of research on GacS/GacA from various perspectives, including the reaction mechanism, related regulatory pathways, main functions and GacS/GacA-mediated applications. Hopefully, this review will facilitate further research on GacS/GacA and promote its application in regulating secondary metabolism and as a therapeutic target.

摘要

微生物的信号转导系统有助于它们适应复杂生活环境中的变化。双组分系统(TCS)是一种具有代表性的信号转导系统,在调节细胞通讯和次级代谢中起着关键作用。在革兰氏阴性菌中,由组氨酸激酶蛋白GacS(最初称为LemA)和反应调节蛋白GacA组成的非正统TCS广泛存在。它主要通过Gac/Rsm(次级代谢调节剂)信号级联途径调节细菌的各种生理活动和行为,如群体感应、次级代谢、生物膜形成和运动性。GacS/GacA在细胞生理活动中的全局调节能力使其成为开发天然产物和解决抗生素耐药性的潜在研究切入点。在这篇综述中,我们从各个角度总结了关于GacS/GacA的研究进展,包括反应机制、相关调节途径、主要功能以及GacS/GacA介导的应用。希望这篇综述将有助于对GacS/GacA的进一步研究,并促进其在调节次级代谢和作为治疗靶点方面的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b8b3/11611043/db65683fadc2/ga1.jpg

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