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铜绿假单胞菌 PAO1 中细胞分裂素激活蛋白的分子机制的结构见解。

Structural insight into molecular mechanism of cytokinin activating protein from Pseudomonas aeruginosa PAO1.

机构信息

School of Life Sciences, KNU Creative BioResearch Group, Kyungpook National University, Daegu, 41566, Republic of Korea.

KNU Institute for Microorganisms, Kyungpook National University, Daegu, 41566, Republic of Korea.

出版信息

Environ Microbiol. 2018 Sep;20(9):3214-3223. doi: 10.1111/1462-2920.14287. Epub 2018 Aug 8.

Abstract

Cytokinin (CK)-activating enzyme, called LOG, is a phosphoribohydrolase that hydrolyzes nucleotides into nucleobases and phosphoriboses. This reaction is a fascinating target for regulation of cellular active CK. However, misannotation of LOG as a lysine decarboxylase and the lack of detailed catalytic and substrate-binding mechanisms have prevented studies of LOG at a protein-level. In this study, we determined the crystal structure of PA4923 from Pseudomonas aeruginosa PAO1. The overall structure of PA4923 resembles those of type-I LOGs, and it exhibited phosphoribohydrolase activity against AMP. These observations indicated that PA4923 functions as an LOG. We also determined the PaLOG structure in complex with AMP and elucidated the detailed binding mode of LOG against the AMP substrate. Interestingly, PaLOG undergoes an open/closed conformational change upon binding AMP, during which the Glu74 residue located on the β3-β4 connecting loop flips 180° and moves 13 Å towards the AMP molecule. Structural and amino acid sequence comparisons of LOGs suggest that this conformational change upon substrate binding might be a common phenomenon in LOGs. In addition, based on our structural studies and the reported catalytic mechanism of nucleoside hydrolases, we proposed a catalytic mechanism for LOG in which an oxocarbenium ion-like transition state is formed.

摘要

细胞分裂素(CK)激活酶,称为 LOG,是一种磷酸核糖水解酶,可将核苷酸水解成碱基和磷酸核糖。该反应是调节细胞活性 CK 的一个有趣目标。然而,由于 LOG 被错误注释为赖氨酸脱羧酶,以及缺乏详细的催化和底物结合机制,阻碍了对 LOG 的蛋白质水平研究。在这项研究中,我们确定了铜绿假单胞菌 PAO1 的 PA4923 的晶体结构。PA4923 的整体结构类似于 I 型 LOG,并且对 AMP 表现出磷酸核糖水解酶活性。这些观察结果表明,PA4923 作为 LOG 发挥作用。我们还确定了与 AMP 结合的 PaLOG 结构,并阐明了 LOG 对 AMP 底物的详细结合模式。有趣的是,PaLOG 在结合 AMP 时经历开/闭构象变化,在此过程中,位于β3-β4 连接环上的 Glu74 残基翻转 180°并向 AMP 分子移动 13 Å。LOG 的结构和氨基酸序列比较表明,这种结合底物时的构象变化可能是 LOG 中的一个普遍现象。此外,基于我们的结构研究和报道的核苷水解酶催化机制,我们提出了 LOG 的催化机制,其中形成类似氧碳正离子的过渡态。

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