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基于发光的偶联酶分析可高通量定量细菌第二信使 3'3'-环二腺苷酸。

A Luminescence-Based Coupled Enzyme Assay Enables High-Throughput Quantification of the Bacterial Second Messenger 3'3'-Cyclic-Di-AMP.

机构信息

Department of Microbiology, University of Washington, 98195, Seattle, WA, USA.

Seattle Children's Research Institute, 98109, Seattle, WA, USA.

出版信息

Chembiochem. 2021 Mar 16;22(6):1030-1041. doi: 10.1002/cbic.202000667. Epub 2020 Dec 4.

Abstract

Cyclic dinucleotide signaling systems, which are found ubiquitously throughout nature, allow organisms to rapidly and dynamically sense and respond to alterations in their environments. In recent years, the second messenger, cyclic di-(3',5')-adenosine monophosphate (c-di-AMP), has been identified as an essential signaling molecule in a diverse array of bacterial genera. We and others have shown that defects in c-di-AMP homeostasis result in severe physiological defects and virulence attenuation in many bacterial species. Despite significant advancements in the field, there is still a major gap in the understanding of the environmental and cellular factors that influence c-di-AMP dynamics due to a lack of tools to sensitively and rapidly monitor changes in c-di-AMP levels. To address this limitation, we describe here the development of a luciferase-based coupled enzyme assay that leverages the cyclic nucleotide phosphodiesterase, CnpB, for the sensitive and high-throughput quantification of 3'3'-c-di-AMP. We also demonstrate the utility of this approach for the quantification of the cyclic oligonucleotide-based anti-phage signaling system (CBASS) effector, 3'3'-cGAMP. These findings establish CDA-Luc as a more affordable and sensitive alternative to conventional c-di-AMP detection tools with broad utility for the study of bacterial cyclic dinucleotide physiology.

摘要

环状二核苷酸信号系统在自然界中广泛存在,使生物体能够快速、动态地感知和响应其环境的变化。近年来,第二信使环二(3',5')-腺苷一磷酸(c-di-AMP)被确定为许多细菌属中必不可少的信号分子。我们和其他人已经表明,c-di-AMP 动态平衡的缺陷会导致许多细菌物种严重的生理缺陷和毒力减弱。尽管该领域取得了重大进展,但由于缺乏灵敏快速监测 c-di-AMP 水平变化的工具,对于影响 c-di-AMP 动态的环境和细胞因素的理解仍存在很大差距。为了解决这一限制,我们在这里描述了一种基于荧光素酶的偶联酶测定法的开发,该方法利用环核苷酸磷酸二酯酶 CnpB 灵敏、高通量地定量 3'3'-c-di-AMP。我们还证明了这种方法在定量基于环状寡核苷酸的抗噬菌体信号系统(CBASS)效应物 3'3'-cGAMP 中的应用。这些发现确立了 CDA-Luc 作为一种更经济实惠、更灵敏的替代传统 c-di-AMP 检测工具的方法,具有广泛的研究细菌环状二核苷酸生理学的应用价值。

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