A decade of research on the second messenger c-di-AMP
ABSTRACT Cyclic dimeric adenosine 3′,5′-monophosphate (c-di-AMP) is an emerging second messenger in bacteria and archaea that is synthesized from two molecules of ATP by diadenylate cyclases and degraded to pApA or two AMP molecules by c-di-AMP-specific phosphodiesterases. Through binding to specifi...
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Veröffentlicht in: | FEMS microbiology reviews 2020-11, Vol.44 (6), p.701-724 |
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Zusammenfassung: | ABSTRACT
Cyclic dimeric adenosine 3′,5′-monophosphate (c-di-AMP) is an emerging second messenger in bacteria and archaea that is synthesized from two molecules of ATP by diadenylate cyclases and degraded to pApA or two AMP molecules by c-di-AMP-specific phosphodiesterases. Through binding to specific protein- and riboswitch-type receptors, c-di-AMP regulates a wide variety of prokaryotic physiological functions, including maintaining the osmotic pressure, balancing central metabolism, monitoring DNA damage and controlling biofilm formation and sporulation. It mediates bacterial adaptation to a variety of environmental parameters and can also induce an immune response in host animal cells. In this review, we discuss the phylogenetic distribution of c-di-AMP-related enzymes and receptors and provide some insights into the various aspects of c-di-AMP signaling pathways based on more than a decade of research. We emphasize the key role of c-di-AMP in maintaining bacterial osmotic balance, especially in Gram-positive bacteria. In addition, we discuss the future direction and trends of c-di-AMP regulatory network, such as the likely existence of potential c-di-AMP transporter(s), the possibility of crosstalk between c-di-AMP signaling with other regulatory systems, and the effects of c-di-AMP compartmentalization. This review aims to cover the broad spectrum of research on the regulatory functions of c-di-AMP and c-di-AMP signaling pathways.
This review describes the latest outlook on c-di-AMP signaling pathways that are involved in its homeostasis, reception, various physiological functions, and emphasizing on its role in regulating bacterial osmotic balance, as well as several issues to be explored in the near future. |
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ISSN: | 1574-6976 0168-6445 1574-6976 |
DOI: | 10.1093/femsre/fuaa019 |