RhoG and Cdc42 can contribute to Rac-dependent lamellipodia formation through WAVE regulatory complex-binding.

Q2 Biochemistry, Genetics and Molecular Biology
Small GTPases Pub Date : 2021-03-01 Epub Date: 2019-08-26 DOI:10.1080/21541248.2019.1657755
Matthias Schaks, Hermann Döring, Frieda Kage, Anika Steffen, Thomas Klünemann, Wulf Blankenfeldt, Theresia Stradal, Klemens Rottner
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引用次数: 0

Abstract

Cell migration frequently involves the formation of lamellipodial protrusions, the initiation of which requires Rac GTPases signalling to heteropentameric WAVE regulatory complex (WRC). While Rac-related RhoG and Cdc42 can potently stimulate lamellipodium formation, so far presumed to occur by upstream signalling to Rac activation, we show here that the latter can be bypassed by RhoG and Cdc42 given that WRC has been artificially activated. This evidence arises from generation of B16-F1 cells simultaneously lacking both Rac GTPases and WRC, followed by reconstitution of lamellipodia formation with specific Rho-GTPase and differentially active WRC variant combinations. We conclude that formation of canonical lamellipodia requires WRC activation through Rac, but can possibly be tuned, in addition, by WRC interactions with RhoG and Cdc42.

RhoG和Cdc42可以通过WAVE调节复合物结合促进rac依赖性板足的形成
细胞迁移经常涉及片状突起的形成,其启动需要Rac-GTP酶向异五聚体WAVE调节复合物(WRC)发出信号。虽然Rac相关的RhoG和Cdc42可以有效地刺激lamellipods的形成,到目前为止,据推测是通过Rac激活的上游信号发生的,但我们在这里表明,鉴于WRC已被人工激活,RhoG或Cdc42可绕过后者。这一证据来源于同时缺乏Rac GTP酶和WRC的B16-F1细胞的产生,随后用特异性Rho GTP酶及差异活性的WRC变体组合重建lamellipodia的形成。我们得出的结论是,典型lamellipodia的形成需要通过Rac激活WRC,但也可能通过WRC与RhoG和Cdc42的相互作用来调节。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Small GTPases
Small GTPases Biochemistry, Genetics and Molecular Biology-Biochemistry
CiteScore
6.10
自引率
0.00%
发文量
6
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