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Biochemistry. 2020 Mar 3;59(8):983-991. doi: 10.1021/acs.biochem.0c00021. Epub 2020 Feb 20.
2
Second messengers and divergent HD-GYP phosphodiesterases regulate 3',3'-cGAMP signaling.第二信使和差异型 HD-GYP 磷酸二酯酶调节 3',3'-cGAMP 信号通路。
Mol Microbiol. 2020 Jan;113(1):222-236. doi: 10.1111/mmi.14412. Epub 2019 Nov 17.
3
Structures of c-di-GMP/cGAMP degrading phosphodiesterase VcEAL: identification of a novel conformational switch and its implication.c-di-GMP/cGAMP 降解磷酸二酯酶 VcEAL 的结构:一种新型构象开关的鉴定及其意义。
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Nature. 2019 Oct;574(7780):691-695. doi: 10.1038/s41586-019-1605-5. Epub 2019 Sep 18.
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A New Microbial Pathway for Organophosphonate Degradation Catalyzed by Two Previously Misannotated Non-Heme-Iron Oxygenases.由两种先前注释错误的非血红素铁加氧酶催化的有机膦酸盐降解新微生物途径。
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An HD domain phosphohydrolase active site tailored for oxetanocin-A biosynthesis.为氧杂环丁烷霉素A生物合成量身定制的HD结构域磷酸水解酶活性位点。
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Active Site Metal Occupancy and Cyclic Di-GMP Phosphodiesterase Activity of Thermotoga maritima HD-GYP.嗜热栖热菌HD-GYP的活性位点金属占据情况与环二鸟苷酸磷酸二酯酶活性
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HD-[HD-GYP] 磷酸二酯酶:HD-GYP 家族中的活性和进化多样性。

HD-[HD-GYP] Phosphodiesterases: Activities and Evolutionary Diversification within the HD-GYP Family.

机构信息

Department of Biochemistry, Brandeis University, Waltham, Massachusetts 02453, United States.

出版信息

Biochemistry. 2020 Jun 30;59(25):2340-2350. doi: 10.1021/acs.biochem.0c00257. Epub 2020 Jun 15.

DOI:10.1021/acs.biochem.0c00257
PMID:32496757
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8177754/
Abstract

Cyclic dinucleotides are signaling molecules that modulate many processes, including immune response and virulence factor production. Their cellular levels in bacteria are fine-tuned by metal-dependent phosphodiesterases, namely, the EAL and HD-GYP proteins, with HD-GYPs belonging to the larger HD domain superfamily. In this study, we first focus on the catalytic properties and the range of metal ions and substrates of the HD-[HD-GYP] subfamily, consisting of two HD domains. We identified SO3491 as a homologue of VCA0681 and the second example of an HD-[HD-GYP]. Both proteins hydrolyze c-di-GMP and 3'3'c-GAMP and coordinate various metal ions, but only Fe and to a lesser extent Co support hydrolysis. The proteins are active only in the diferrous form and not in the one-electron more oxidized FeFe state. Although the C-terminal HD-GYP domain is essential for activity, the role of the N-terminal HD domain remains unknown. We show that the N-terminal site is important for protein stability, influences the individual apparent and (but not /), and cannot bind c-di-GMP, thus precluding its involvement in cyclic dinucleotide sensing. We proceeded to perform phylogenetic analyses to examine the distribution and functional relationships of the HD-[HD-GYP]s to the rest of the HD-GYPs. The phylogeny provides a correlation map that draws a link between the evolutionary and functional diversification of HD-GYPs, serving as a template for predicting the chemical nature of the metallocofactor, level of activity, and reaction outcome.

摘要

环二核苷酸是调节多种过程的信号分子,包括免疫反应和毒力因子的产生。它们在细菌中的细胞水平通过金属依赖性磷酸二酯酶(即 EAL 和 HD-GYP 蛋白)进行微调,HD-GYPs 属于更大的 HD 结构域超家族。在这项研究中,我们首先关注由两个 HD 结构域组成的 HD-[HD-GYP]亚家族的催化特性以及金属离子和底物的范围。我们鉴定出 SO3491 是 VCA0681 的同源物,也是第二个 HD-[HD-GYP]的例子。这两种蛋白质都能水解 c-di-GMP 和 3'3'c-GAMP,并能协调各种金属离子,但只有 Fe 和在较小程度上 Co 支持水解。这些蛋白质仅在二价铁形式下具有活性,而不在一价铁更多氧化的 FeFe 状态下具有活性。虽然 C 端的 HD-GYP 结构域对于活性是必需的,但 N 端的 HD 结构域的作用仍然未知。我们表明,N 端位点对于蛋白质稳定性很重要,影响单个的表观 和 (但不是 /),并且不能结合 c-di-GMP,因此排除了它参与环二核苷酸感应的可能性。我们继续进行系统发育分析,以研究 HD-[HD-GYP]与其余 HD-GYPs 的分布和功能关系。系统发育提供了一个关联图,将 HD-GYPs 的进化和功能多样化联系起来,为预测金属辅因子的化学性质、活性水平和反应结果提供了模板。