局部信号增强了细菌c-di-GMP信号网络的输出特异性。

microLife Pub Date : 2023-01-01 DOI:10.1093/femsml/uqad026
Eike H Junkermeier, Regine Hengge
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引用次数: 1

摘要

多年来,c-di-GMP信号蛋白令人惊讶的多样性、信号输入多样性和输出特异性引起了研究细菌第二信使的研究人员的兴趣。尽管依赖于维持在一定的全局细胞浓度的相同扩散的第二信使,几个信号通路如何并行地产生特定的输出?这种高特异性和灵活性来自于复杂信号网络中局部和全局c-di-GMP信号传递模式的结合。局部c-di-GMP信号可以通过满足三个标准来实验证明:(i)特定c-di-GMP相关酶的高度特异性敲除表型,(ii)细胞实际c-di-GMP水平在这种突变下保持不变和/或低于相关c-di-GMP结合效应物的Kd值,以及(iii)相关信号蛋白之间的直接相互作用。在这里,我们讨论了这些标准背后的基本原理,并提出了大肠杆菌和假单胞菌中局部c-di-GMP信号传导的充分研究实例。相对简单的系统只是将c-di-GMP的局部源和/或局部汇,即二胍酸环化酶(DGC)和/或特定磷酸二酯酶(PDE)分别与c-di-GMP结合效应物/靶系统共定位。更复杂的系统也利用调节蛋白相互作用,例如,当“触发PDE”响应局部提供的c-di-GMP时,从而作为c-di-GMP传感效应物直接控制靶标活性,或者当c-di-GMP结合效应物招募并直接激活其自身的“私有”DGC时。最后,我们展望了细胞如何结合c-di-GMP的局部和全局信号模式,并可能将其整合到其他信号核苷酸网络中。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Local signaling enhances output specificity of bacterial c-di-GMP signaling networks.

Local signaling enhances output specificity of bacterial c-di-GMP signaling networks.

Local signaling enhances output specificity of bacterial c-di-GMP signaling networks.

Local signaling enhances output specificity of bacterial c-di-GMP signaling networks.

For many years the surprising multiplicity, signal input diversity, and output specificity of c-di-GMP signaling proteins has intrigued researchers studying bacterial second messengers. How can several signaling pathways act in parallel to produce specific outputs despite relying on the same diffusible second messenger maintained at a certain global cellular concentration? Such high specificity and flexibility arise from combining modes of local and global c-di-GMP signaling in complex signaling networks. Local c-di-GMP signaling can be experimentally shown by three criteria being met: (i) highly specific knockout phenotypes for particular c-di-GMP-related enzymes, (ii) actual cellular c-di-GMP levels that remain unchanged by such mutations and/or below the Kd's of the relevant c-di-GMP-binding effectors, and (iii) direct interactions between the signaling proteins involved. Here, we discuss the rationale behind these criteria and present well-studied examples of local c-di-GMP signaling in Escherichia coli and Pseudomonas. Relatively simple systems just colocalize a local source and/or a local sink for c-di-GMP, i.e. a diguanylate cyclase (DGC) and/or a specific phosphodiesterase (PDE), respectively, with a c-di-GMP-binding effector/target system. More complex systems also make use of regulatory protein interactions, e.g. when a "trigger PDE" responds to locally provided c-di-GMP, and thereby serves as a c-di-GMP-sensing effector that directly controls a target's activity, or when a c-di-GMP-binding effector recruits and directly activates its own "private" DGC. Finally, we provide an outlook into how cells can combine local and global signaling modes of c-di-GMP and possibly integrate those into other signaling nucleotides networks.

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