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Structural Basis for Rab1 De-AMPylation by the Legionella pneumophila Effector SidD

机译:嗜肺军团菌效应子SidD的Rab1脱-AMPylation的结构基础。

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摘要

The covalent attachment of adenosine monophosphate (AMP) to proteins, a process called AMPylation (adenylylation), has recently emerged as a novel theme in microbial pathogenesis. Although several AMPylating enzymes have been characterized, the only known virulence protein with de-AMPylation activity is SidD from the human pathogen Legionella pneumophila. SidD de-AMPylates mammalian Rab1, a small GTPase involved in secretory vesicle transport, thereby targeting the host protein for inactivation. The molecular mechanisms underlying Rab1 recognition and de-AMPylation by SidD are unclear. Here, we report the crystal structure of the catalytic region of SidD at 1.6 Å resolution. The structure reveals a phosphatase-like fold with additional structural elements not present in generic PP2C-type phosphatases. The catalytic pocket contains a binuclear metal-binding site characteristic of hydrolytic metalloenzymes, with strong dependency on magnesium ions. Subsequent docking and molecular dynamics simulations between SidD and Rab1 revealed the interface contacts and the energetic contribution of key residues to the interaction. In conjunction with an extensive structure-based mutational analysis, we provide in vivo and in vitro evidence for a remarkable adaptation of SidD to its host cell target Rab1 which explains how this effector confers specificity to the reaction it catalyses.
机译:腺苷一磷酸(AMP)与蛋白质的共价结合,称为AMPylation(腺苷酸化)的过程,最近已成为微生物发病机理中的一个新主题。尽管已表征了几种AMPylating酶,但唯一具有去AMPylation活性的毒力蛋白是来自人类病原体肺炎军团菌的SidD。 SidD可以使哺乳动物Rab1(一种参与分泌性小泡转运的小GTP酶)去AMP化,从而使宿主蛋白失活。通过SidD识别Rab1并进行去Ampyl化的分子机制尚不清楚。在这里,我们报告了SidD催化区在1.6分辨率下的晶体结构。该结构揭示了磷酸酶样的折叠,并具有一般PP2C型磷酸酶中不存在的其他结构元件。催化袋包含水解金属酶的双核金属结合位点,对镁离子有很强的依赖性。随后,SidD和Rab1之间的对接和分子动力学模拟显示了界面接触以及关键残基对相互作用的高能贡献。结合广泛的基于结构的突变分析,我们提供了SidD对宿主细胞靶标Rab1显着适应的体内和体外证据,这说明了该效应子如何赋予其催化反应特异性。

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