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Structures reveal a key mechanism of WAVE regulatory complex activation by Rac1 GTPase.


ABSTRACT: The Rho-family GTPase Rac1 activates the WAVE regulatory complex (WRC) to drive Arp2/3 complex-mediated actin polymerization in many essential processes. Rac1 binds to WRC at two distinct sites-the A and D sites. Precisely how Rac1 binds and how the binding triggers WRC activation remain unknown. Here we report WRC structures by itself, and when bound to single or double Rac1 molecules, at ~3 Å resolutions by cryogenic-electron microscopy. The structures reveal that Rac1 binds to the two sites by distinct mechanisms, and binding to the A site, but not the D site, drives WRC activation. Activation involves a series of unique conformational changes leading to the release of sequestered WCA (WH2-central-acidic) polypeptide, which stimulates the Arp2/3 complex to polymerize actin. Together with biochemical and cellular analyses, the structures provide a novel mechanistic understanding of how the Rac1-WRC-Arp2/3-actin signaling axis is regulated in diverse biological processes and diseases.

SUBMITTER: Ding B 

PROVIDER: S-EPMC9481577 | biostudies-literature | 2022 Sep

REPOSITORIES: biostudies-literature

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Structures reveal a key mechanism of WAVE regulatory complex activation by Rac1 GTPase.

Ding Bojian B   Yang Sheng S   Schaks Matthias M   Liu Yijun Y   Brown Abbigale J AJ   Rottner Klemens K   Chowdhury Saikat S   Chen Baoyu B  

Nature communications 20220916 1


The Rho-family GTPase Rac1 activates the WAVE regulatory complex (WRC) to drive Arp2/3 complex-mediated actin polymerization in many essential processes. Rac1 binds to WRC at two distinct sites-the A and D sites. Precisely how Rac1 binds and how the binding triggers WRC activation remain unknown. Here we report WRC structures by itself, and when bound to single or double Rac1 molecules, at ~3 Å resolutions by cryogenic-electron microscopy. The structures reveal that Rac1 binds to the two sites b  ...[more]

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