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乳酸细菌中环状二腺苷酸对丙酮酸羧化酶调节的结构和功能研究。

Structural and functional studies of pyruvate carboxylase regulation by cyclic di-AMP in lactic acid bacteria.

机构信息

Department of Biological Sciences, Columbia University, New York, NY 10027.

School of Agriculture and Food Sciences, University of Queensland, Brisbane, QLD 4072, Australia.

出版信息

Proc Natl Acad Sci U S A. 2017 Aug 29;114(35):E7226-E7235. doi: 10.1073/pnas.1704756114. Epub 2017 Aug 14.

Abstract

Cyclic di-3',5'-adenosine monophosphate (c-di-AMP) is a broadly conserved bacterial second messenger that has been implicated in a wide range of cellular processes. Our earlier studies showed that c-di-AMP regulates central metabolism in by inhibiting its pyruvate carboxylase (LmPC), a biotin-dependent enzyme with biotin carboxylase (BC) and carboxyltransferase (CT) activities. We report here structural, biochemical, and functional studies on the inhibition of PC (LlPC) by c-di-AMP. The compound is bound at the dimer interface of the CT domain, at a site equivalent to that in LmPC, although it has a distinct binding mode in the LlPC complex. This binding site is not well conserved among PCs, and only a subset of these bacterial enzymes are sensitive to c-di-AMP. Conformational changes in the CT dimer induced by c-di-AMP binding may be the molecular mechanism for its inhibitory activity. Mutations of residues in the binding site can abolish c-di-AMP inhibition. In , LlPC is required for efficient milk acidification through its essential role in aspartate biosynthesis. The aspartate pool in is negatively regulated by c-di-AMP, and high aspartate levels can be restored by expression of a c-di-AMP-insensitive LlPC. LlPC has high intrinsic catalytic activity and is not sensitive to acetyl-CoA activation, in contrast to other PC enzymes.

摘要

环二鸟苷酸(c-di-AMP)是一种广泛保守的细菌第二信使,涉及多种细胞过程。我们之前的研究表明,c-di-AMP 通过抑制其丙酮酸羧化酶(LmPC)来调节 中的中心代谢,LmPC 是一种依赖生物素的酶,具有生物素羧化酶(BC)和羧基转移酶(CT)活性。我们在此报告关于 c-di-AMP 抑制 LmPC 的结构、生化和功能研究。该化合物结合在 CT 结构域的二聚体界面上,与 LmPC 中的结合位点相当,尽管它在 LlPC 复合物中的结合模式不同。该结合位点在 PCs 中没有很好的保守性,并且只有一部分这些细菌酶对 c-di-AMP 敏感。CT 二聚体中由 c-di-AMP 结合引起的构象变化可能是其抑制活性的分子机制。结合位点中残基的突变可以消除 c-di-AMP 的抑制作用。在 中,LlPC 通过其在天冬氨酸生物合成中的必需作用,对于有效的乳酸化是必需的。 的天冬氨酸池受 c-di-AMP 负调控,通过表达对 c-di-AMP 不敏感的 LlPC 可以恢复高天冬氨酸水平。与其他 PC 酶不同,LlPC 具有高固有催化活性,并且不敏感于乙酰辅酶 A 的激活。

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