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Distinct Interaction Sites of Rac GTPase with WAVE Regulatory Complex Have Non-redundant Functions in Vivo

Cell migration often involves the formation of sheet-like lamellipodia generated by branched actin filaments. The branches are initiated when Arp2/3 complex [1] is activated by WAVE regulatory complex (WRC) downstream of small GTPases of the Rac family [2]. Recent structural studies defined two inde...

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Autores principales: Schaks, Matthias, Singh, Shashi P., Kage, Frieda, Thomason, Peter, Klünemann, Thomas, Steffen, Anika, Blankenfeldt, Wulf, Stradal, Theresia E., Insall, Robert H., Rottner, Klemens
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cell Press 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6264382/
https://www.ncbi.nlm.nih.gov/pubmed/30393033
http://dx.doi.org/10.1016/j.cub.2018.10.002
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author Schaks, Matthias
Singh, Shashi P.
Kage, Frieda
Thomason, Peter
Klünemann, Thomas
Steffen, Anika
Blankenfeldt, Wulf
Stradal, Theresia E.
Insall, Robert H.
Rottner, Klemens
author_facet Schaks, Matthias
Singh, Shashi P.
Kage, Frieda
Thomason, Peter
Klünemann, Thomas
Steffen, Anika
Blankenfeldt, Wulf
Stradal, Theresia E.
Insall, Robert H.
Rottner, Klemens
author_sort Schaks, Matthias
collection PubMed
description Cell migration often involves the formation of sheet-like lamellipodia generated by branched actin filaments. The branches are initiated when Arp2/3 complex [1] is activated by WAVE regulatory complex (WRC) downstream of small GTPases of the Rac family [2]. Recent structural studies defined two independent Rac binding sites on WRC within the Sra-1/PIR121 subunit of the pentameric WRC [3, 4], but the functions of these sites in vivo have remained unknown. Here we dissect the mechanism of WRC activation and the in vivo relevance of distinct Rac binding sites on Sra-1, using CRISPR/Cas9-mediated gene disruption of Sra-1 and its paralog PIR121 in murine B16-F1 cells combined with Sra-1 mutant rescue. We show that the A site, positioned adjacent to the binding region of WAVE-WCA mediating actin and Arp2/3 complex binding, is the main site for allosteric activation of WRC. In contrast, the D site toward the C terminus is dispensable for WRC activation but required for optimal lamellipodium morphology and function. These results were confirmed in evolutionarily distant Dictyostelium cells. Moreover, the phenotype seen in D site mutants was recapitulated in Rac1 E31 and F37 mutants; we conclude these residues are important for Rac-D site interaction. Finally, constitutively activated WRC was able to induce lamellipodia even after both Rac interaction sites were lost, showing that Rac interaction is not essential for membrane recruitment. Our data establish that physical interaction with Rac is required for WRC activation, in particular through the A site, but is not mandatory for WRC accumulation in the lamellipodium.
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spelling pubmed-62643822018-12-07 Distinct Interaction Sites of Rac GTPase with WAVE Regulatory Complex Have Non-redundant Functions in Vivo Schaks, Matthias Singh, Shashi P. Kage, Frieda Thomason, Peter Klünemann, Thomas Steffen, Anika Blankenfeldt, Wulf Stradal, Theresia E. Insall, Robert H. Rottner, Klemens Curr Biol Article Cell migration often involves the formation of sheet-like lamellipodia generated by branched actin filaments. The branches are initiated when Arp2/3 complex [1] is activated by WAVE regulatory complex (WRC) downstream of small GTPases of the Rac family [2]. Recent structural studies defined two independent Rac binding sites on WRC within the Sra-1/PIR121 subunit of the pentameric WRC [3, 4], but the functions of these sites in vivo have remained unknown. Here we dissect the mechanism of WRC activation and the in vivo relevance of distinct Rac binding sites on Sra-1, using CRISPR/Cas9-mediated gene disruption of Sra-1 and its paralog PIR121 in murine B16-F1 cells combined with Sra-1 mutant rescue. We show that the A site, positioned adjacent to the binding region of WAVE-WCA mediating actin and Arp2/3 complex binding, is the main site for allosteric activation of WRC. In contrast, the D site toward the C terminus is dispensable for WRC activation but required for optimal lamellipodium morphology and function. These results were confirmed in evolutionarily distant Dictyostelium cells. Moreover, the phenotype seen in D site mutants was recapitulated in Rac1 E31 and F37 mutants; we conclude these residues are important for Rac-D site interaction. Finally, constitutively activated WRC was able to induce lamellipodia even after both Rac interaction sites were lost, showing that Rac interaction is not essential for membrane recruitment. Our data establish that physical interaction with Rac is required for WRC activation, in particular through the A site, but is not mandatory for WRC accumulation in the lamellipodium. Cell Press 2018-11-19 /pmc/articles/PMC6264382/ /pubmed/30393033 http://dx.doi.org/10.1016/j.cub.2018.10.002 Text en © 2018 The Author(s) http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Schaks, Matthias
Singh, Shashi P.
Kage, Frieda
Thomason, Peter
Klünemann, Thomas
Steffen, Anika
Blankenfeldt, Wulf
Stradal, Theresia E.
Insall, Robert H.
Rottner, Klemens
Distinct Interaction Sites of Rac GTPase with WAVE Regulatory Complex Have Non-redundant Functions in Vivo
title Distinct Interaction Sites of Rac GTPase with WAVE Regulatory Complex Have Non-redundant Functions in Vivo
title_full Distinct Interaction Sites of Rac GTPase with WAVE Regulatory Complex Have Non-redundant Functions in Vivo
title_fullStr Distinct Interaction Sites of Rac GTPase with WAVE Regulatory Complex Have Non-redundant Functions in Vivo
title_full_unstemmed Distinct Interaction Sites of Rac GTPase with WAVE Regulatory Complex Have Non-redundant Functions in Vivo
title_short Distinct Interaction Sites of Rac GTPase with WAVE Regulatory Complex Have Non-redundant Functions in Vivo
title_sort distinct interaction sites of rac gtpase with wave regulatory complex have non-redundant functions in vivo
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6264382/
https://www.ncbi.nlm.nih.gov/pubmed/30393033
http://dx.doi.org/10.1016/j.cub.2018.10.002
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