Department of Microbiology, Humboldt-Universität zu Berlin, 10115 Berlin, Germany.
Gene Center, Ludwig-Maximilians-Universität München, 81377 München, Germany.
Proc Natl Acad Sci U S A. 2020 Mar 31;117(13):7392-7400. doi: 10.1073/pnas.1917080117. Epub 2020 Mar 18.
Antibiotic-producing use the diadenylate cyclase DisA to synthesize the nucleotide second messenger c-di-AMP, but the mechanism for terminating c-di-AMP signaling and the proteins that bind the molecule to effect signal transduction are unknown. Here, we identify the AtaC protein as a c-di-AMP-specific phosphodiesterase that is also conserved in pathogens such as and AtaC is monomeric in solution and binds Mn to specifically hydrolyze c-di-AMP to AMP via the intermediate 5'-pApA. As an effector of c-di-AMP signaling, we characterize the RCK_C domain protein CpeA. c-di-AMP promotes interaction between CpeA and the predicted cation/proton antiporter, CpeB, linking c-di-AMP signaling to ion homeostasis in Actinobacteria. Hydrolysis of c-di-AMP is critical for normal growth and differentiation in , connecting ionic stress to development. Thus, we present the discovery of two components of c-di-AMP signaling in bacteria and show that precise control of this second messenger is essential for ion balance and coordinated development in .
产生抗生素的细菌利用二腺苷环化酶 DisA 合成核苷酸第二信使 c-di-AMP,但终止 c-di-AMP 信号的机制以及结合该分子以进行信号转导的蛋白质尚不清楚。在这里,我们将 AtaC 蛋白鉴定为 c-di-AMP 特异性磷酸二酯酶,该酶在病原体如 和 中也保守。AtaC 在溶液中是单体,并结合 Mn 特异性地将 c-di-AMP 水解为 AMP,通过中间产物 5'-pApA。作为 c-di-AMP 信号的效应物,我们对 RCK_C 结构域蛋白 CpeA 进行了表征。c-di-AMP 促进 CpeA 与预测的阳离子/质子反向转运蛋白 CpeB 之间的相互作用,将 c-di-AMP 信号与放线菌中的离子稳态联系起来。c-di-AMP 的水解对于 中的正常生长和分化至关重要,将离子应激与发育联系起来。因此,我们提出了细菌中 c-di-AMP 信号的两个组件的发现,并表明这种第二信使的精确控制对于离子平衡和协调放线菌的发育是必不可少的。