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来自地杆菌属的GEMM-I核糖开关可感知细菌第二信使环AMP-GMP。

GEMM-I riboswitches from Geobacter sense the bacterial second messenger cyclic AMP-GMP.

作者信息

Kellenberger Colleen A, Wilson Stephen C, Hickey Scott F, Gonzalez Tania L, Su Yichi, Hallberg Zachary F, Brewer Thomas F, Iavarone Anthony T, Carlson Hans K, Hsieh Yu-Fang, Hammond Ming C

机构信息

Department of Chemistry.

Department of Molecular and Cell Biology.

出版信息

Proc Natl Acad Sci U S A. 2015 Apr 28;112(17):5383-8. doi: 10.1073/pnas.1419328112. Epub 2015 Apr 6.

Abstract

Cyclic dinucleotides are an expanding class of signaling molecules that control many aspects of bacterial physiology. A synthase for cyclic AMP-GMP (cAG, also referenced as 3'-5', 3'-5' cGAMP) called DncV is associated with hyperinfectivity of Vibrio cholerae but has not been found in many bacteria, raising questions about the prevalence and function of cAG signaling. We have discovered that the environmental bacterium Geobacter sulfurreducens produces cAG and uses a subset of GEMM-I class riboswitches (GEMM-Ib, Genes for the Environment, Membranes, and Motility) as specific receptors for cAG. GEMM-Ib riboswitches regulate genes associated with extracellular electron transfer; thus cAG signaling may control aspects of bacterial electrophysiology. These findings expand the role of cAG beyond organisms that harbor DncV and beyond pathogenesis to microbial geochemistry, which is important to environmental remediation and microbial fuel cell development. Finally, we have developed an RNA-based fluorescent biosensor for live-cell imaging of cAG. This selective, genetically encodable biosensor will be useful to probe the biochemistry and cell biology of cAG signaling in diverse bacteria.

摘要

环二核苷酸是一类不断扩展的信号分子,可控制细菌生理学的许多方面。一种名为DncV的环AMP-GMP(cAG,也称为3'-5',3'-5' cGAMP)合酶与霍乱弧菌的高感染性有关,但在许多细菌中尚未发现,这引发了关于cAG信号传导的普遍性和功能的问题。我们发现,环境细菌硫还原地杆菌会产生cAG,并使用GEMM-I类核糖开关(GEMM-Ib,环境、膜和运动基因)的一个子集作为cAG的特异性受体。GEMM-Ib核糖开关调节与细胞外电子转移相关的基因;因此,cAG信号传导可能控制细菌电生理学的各个方面。这些发现将cAG的作用扩展到了含有DncV的生物体之外,以及发病机制之外,延伸至微生物地球化学领域,这对环境修复和微生物燃料电池的发展具有重要意义。最后,我们开发了一种基于RNA的荧光生物传感器,用于对cAG进行活细胞成像。这种选择性的、可遗传编码的生物传感器将有助于探究不同细菌中cAG信号传导的生物化学和细胞生物学。

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