Hu Tong, Li Shuang, Zhong Weihong
College of Biotechnology and Bioengineering, Zhejiang University of Technology, Hangzhou 310014, Zhejiang, China.
Sheng Wu Gong Cheng Xue Bao. 2024 Mar 25;40(3):644-664. doi: 10.13345/j.cjb.230346.
The acid signal transduction system can sense the acidic environment and translate it into signals to regulate various acid tolerance mechanisms within bacteria, helping them to cope with the stress of the acidic environment and survive the acidic environments. This review describes several major acid signal transduction systems that play important roles in acid-tolerant bacteria: EvgS/EvgA, PhoQ/PhoP, ArsS/ArsR, and CadC. The structural components of these systems and their regulation of acid-tolerant systems were used to analyze how acid-tolerant bacteria transduce signal in an acid environment to activate the corresponding acid-tolerance mechanisms and cope with the acid stress. An in-depth understanding of the regulatory mechanisms of acid-tolerant systems can help the mining, optimal design and construction of multiple acid-tolerant parts to improve the growth and metabolism of target strains in acidic environments. It helps to better utilize engineered microorganisms with super acid-resistance for industrial production of valuable metabolites, bioremediation of pollution in acidic environments. Moreover, it also helps to provide novel targets for inhibiting the growth of acid-tolerant pathogenic bacteria.
酸性信号转导系统能够感知酸性环境,并将其转化为信号,以调节细菌体内的各种耐酸机制,帮助它们应对酸性环境的压力并在酸性环境中存活。本综述描述了几种在耐酸细菌中起重要作用的主要酸性信号转导系统:EvgS/EvgA、PhoQ/PhoP、ArsS/ArsR和CadC。利用这些系统的结构组成部分及其对耐酸系统的调控,分析了耐酸细菌如何在酸性环境中传递信号以激活相应的耐酸机制并应对酸胁迫。深入了解耐酸系统的调控机制有助于挖掘、优化设计和构建多种耐酸部件,以改善目标菌株在酸性环境中的生长和代谢。这有助于更好地利用具有超强耐酸性的工程微生物进行有价值代谢物的工业生产、酸性环境中污染的生物修复。此外,它还有助于为抑制耐酸病原菌的生长提供新的靶点。