School of Agriculture and Food Sciences, University of Queensland, Brisbane, Queensland 4072, Australia.
School of Biological Sciences, Nanyang Technological University, 639798, Singapore.
FEMS Microbiol Rev. 2023 May 19;47(3). doi: 10.1093/femsre/fuad025.
Cyclic dimeric adenosine monophosphate (cyclic-di-AMP) is a nucleotide second messenger present in Gram-positive bacteria, Gram-negative bacteria and some Archaea. The intracellular concentration of cyclic-di-AMP is adjusted in response to environmental and cellular cues, primarily through the activities of synthesis and degradation enzymes. It performs its role by binding to protein and riboswitch receptors, many of which contribute to osmoregulation. Imbalances in cyclic-di-AMP can lead to pleiotropic phenotypes, affecting aspects such as growth, biofilm formation, virulence, and resistance to osmotic, acid, and antibiotic stressors. This review focuses on cyclic-di-AMP signalling in lactic acid bacteria (LAB) incorporating recent experimental discoveries and presenting a genomic analysis of signalling components from a variety of LAB, including those found in food, and commensal, probiotic, and pathogenic species. All LAB possess enzymes for the synthesis and degradation of cyclic-di-AMP, but are highly variable with regards to the receptors they possess. Studies in Lactococcus and Streptococcus have revealed a conserved function for cyclic-di-AMP in inhibiting the transport of potassium and glycine betaine, either through direct binding to transporters or to a transcriptional regulator. Structural analysis of several cyclic-di-AMP receptors from LAB has also provided insights into how this nucleotide exerts its influence.
环状二磷酸腺苷(cyclic-di-AMP)是一种存在于革兰氏阳性菌、革兰氏阴性菌和一些古菌中的核苷酸第二信使。细胞内的环状二磷酸腺苷浓度通过合成和降解酶的活性来响应环境和细胞信号进行调节。它通过与蛋白和核糖开关受体结合来发挥作用,其中许多受体参与渗透压调节。环状二磷酸腺苷的失衡会导致表型多效性,影响生长、生物膜形成、毒力和对渗透压、酸和抗生素胁迫的抗性等方面。本综述重点介绍了乳酸菌(LAB)中的环状二磷酸腺苷信号转导,包括最近的实验发现,并对来自各种 LAB 的信号转导成分进行了基因组分析,其中包括食品中以及共生、益生菌和致病菌中的 LAB。所有的乳酸菌都拥有合成和降解环状二磷酸腺苷的酶,但它们所拥有的受体具有高度的可变性。在乳球菌和链球菌中的研究揭示了环状二磷酸腺苷在抑制钾和甘氨酸甜菜碱运输方面的保守功能,这种抑制作用可以通过直接与转运体结合或与转录调节因子结合来实现。来自 LAB 的几个环状二磷酸腺苷受体的结构分析也提供了关于该核苷酸如何发挥作用的见解。