第二信使在蓝藻生理调节中的作用:碳浓缩机制及其他。

microLife Pub Date : 2023-01-01 DOI:10.1093/femsml/uqad008
Oliver Mantovani, Michael Haffner, Khaled A Selim, Martin Hagemann, Karl Forchhammer
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引用次数: 3

摘要

第二信使是一种基本的小分子和离子,在生命的各个领域参与许多过程的调节。蓝藻是一种原核生物,由于具有氧光合作用和固碳固氮能力,在地球化学循环中起着重要的初级生产者作用。特别令人感兴趣的是无机碳浓缩机制(CCM),它允许蓝藻在RubisCO附近浓缩二氧化碳。这种机制需要适应波动的条件,如无机碳的可用性、细胞内能量水平、昼夜光循环、光强度、氮的可用性和细胞的氧化还原状态。在适应这种变化条件的过程中,第二信使起着至关重要的作用,尤其是它们与碳控制蛋白SbtB的相互作用,SbtB是PII调节蛋白超家族的成员。SbtB能够结合几个第二信使,独特的腺苷核苷酸,在各种反应中与不同的伙伴相互作用。确定的主要相互作用伙伴是碳酸氢盐转运体SbtA,它通过SbtB进行调节,这取决于细胞的能量状态、光照条件和不同的CO2可用性,包括cAMP信号。与糖原分支酶GlgB的相互作用表明,在蓝藻的昼夜生命周期中,SbtB在依赖c-二磷酸腺苷酸的糖原合成调节中发挥作用。在适应不断变化的CO2条件期间,SbtB也被证明会影响基因表达和代谢。本文综述了目前对蓝藻中复杂第二信使调控网络的了解,重点介绍了碳代谢。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Roles of second messengers in the regulation of cyanobacterial physiology: the carbon-concentrating mechanism and beyond.

Second messengers are a fundamental category of small molecules and ions that are involved in the regulation of many processes in all domains of life. Here we focus on cyanobacteria, prokaryotes playing important roles as primary producers in the geochemical cycles due to their capability of oxygenic photosynthesis and carbon and nitrogen fixation. Of particular interest is the inorganic carbon-concentrating mechanism (CCM), which allows cyanobacteria to concentrate CO2 near RubisCO. This mechanism needs to acclimate toward fluctuating conditions, such as inorganic carbon availability, intracellular energy levels, diurnal light cycle, light intensity, nitrogen availability, and redox state of the cell. During acclimation to such changing conditions, second messengers play a crucial role, particularly important is their interaction with the carbon control protein SbtB, a member of the PII regulator protein superfamily. SbtB is capable of binding several second messengers, uniquely adenyl nucleotides, to interact with different partners in a variety of responses. The main identified interaction partner is the bicarbonate transporter SbtA, which is regulated via SbtB depending on the energy state of the cell, the light conditions, and different CO2 availability, including cAMP signaling. The interaction with the glycogen branching enzyme, GlgB, showed a role for SbtB in the c-di-AMP-dependent regulation of glycogen synthesis during the diurnal life cycle of cyanobacteria. SbtB has also been shown to impact gene expression and metabolism during acclimation to changing CO2 conditions. This review summarizes the current knowledge about the complex second messenger regulatory network in cyanobacteria, with emphasis on carbon metabolism.

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