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非经典Myo9b-RhoGAP通过双精氨酸指机制加速RhoA GTP水解。

Noncanonical Myo9b-RhoGAP Accelerates RhoA GTP Hydrolysis by a Dual-Arginine-Finger Mechanism.

作者信息

Yi Fengshuang, Kong Ruirui, Ren Jinqi, Zhu Li, Lou Jizhong, Wu Jane Y, Feng Wei

机构信息

National Laboratory of Biomacromolecules, CAS Center for Excellence in Biomacromolecules, Institute of Biophysics, Chinese Academy of Sciences, 15 Datun Road, Beijing 100101, China; University of Chinese Academy of Sciences, Beijing 100049, China.

State Key Laboratory of Brain and Cognitive Science, Institute of Biophysics, Chinese Academy of Sciences, 15 Datun Road, Beijing 100101, China.

出版信息

J Mol Biol. 2016 Jul 31;428(15):3043-57. doi: 10.1016/j.jmb.2016.06.014. Epub 2016 Jun 27.

Abstract

The GTP hydrolysis activities of Rho GTPases are stimulated by GTPase-activating proteins (GAPs), which contain a RhoGAP domain equipped with a characteristic arginine finger and an auxiliary asparagine for catalysis. However, the auxiliary asparagine is missing in the RhoGAP domain of Myo9b (Myo9b-RhoGAP), a unique motorized RhoGAP that specifically targets RhoA for controlling cell motility. Here, we determined the structure of Myo9b-RhoGAP in complex with GDP-bound RhoA and magnesium fluoride. Unexpectedly, Myo9b-RhoGAP contains two arginine fingers at its catalytic site. The first arginine finger resembles the one within the canonical RhoGAP domains and inserts into the nucleotide-binding pocket of RhoA, whereas the second arginine finger anchors the Switch I loop of RhoA and interacts with the nucleotide, stabilizing the transition state of GTP hydrolysis and compensating for the lack of the asparagine. Mutating either of the two arginine fingers impaired the catalytic activity of Myo9b-RhoGAP and affected the Myo9b-mediated cell migration. Our data indicate that Myo9b-RhoGAP accelerates RhoA GTP hydrolysis by a previously unknown dual-arginine-finger mechanism, which may be shared by other noncanonical RhoGAP domains lacking the auxiliary asparagine.

摘要

Rho GTP酶的GTP水解活性受GTP酶激活蛋白(GAPs)刺激,GAPs含有一个配备特征性精氨酸指和催化辅助天冬酰胺的RhoGAP结构域。然而,在Myo9b(Myo9b-RhoGAP)的RhoGAP结构域中缺少辅助天冬酰胺,Myo9b是一种独特的具有运动功能的RhoGAP,专门靶向RhoA以控制细胞运动。在此,我们确定了与结合GDP的RhoA和氟化镁形成复合物的Myo9b-RhoGAP的结构。出乎意料的是,Myo9b-RhoGAP在其催化位点含有两个精氨酸指。第一个精氨酸指类似于典型RhoGAP结构域中的精氨酸指,并插入RhoA的核苷酸结合口袋,而第二个精氨酸指固定RhoA的开关I环并与核苷酸相互作用,稳定GTP水解的过渡态并补偿天冬酰胺的缺失。突变两个精氨酸指中的任何一个都会损害Myo9b-RhoGAP的催化活性并影响Myo9b介导的细胞迁移。我们的数据表明,Myo9b-RhoGAP通过一种以前未知的双精氨酸指机制加速RhoA GTP水解,这种机制可能为其他缺乏辅助天冬酰胺的非典型RhoGAP结构域所共有。

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