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Coronin-1C and RCC2 guide mesenchymal migration by trafficking Rac1 and controlling GEF exposure

Sustained forward migration through a fibrillar extracellular matrix requires localization of protrusive signals. Contact with fibronectin at the tip of a cell protrusion activates Rac1, and for linear migration it is necessary to dampen Rac1 activity in off-axial positions and redistribute Rac1 fro...

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Autores principales: Williamson, Rosalind C., Cowell, Christopher A. M., Hammond, Christina L., Bergen, Dylan J. M., Roper, James A., Feng, Yi, Rendall, Thomas C. S., Race, Paul R., Bass, Mark D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Company of Biologists 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4179493/
https://www.ncbi.nlm.nih.gov/pubmed/25074804
http://dx.doi.org/10.1242/jcs.154864
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author Williamson, Rosalind C.
Cowell, Christopher A. M.
Hammond, Christina L.
Bergen, Dylan J. M.
Roper, James A.
Feng, Yi
Rendall, Thomas C. S.
Race, Paul R.
Bass, Mark D.
author_facet Williamson, Rosalind C.
Cowell, Christopher A. M.
Hammond, Christina L.
Bergen, Dylan J. M.
Roper, James A.
Feng, Yi
Rendall, Thomas C. S.
Race, Paul R.
Bass, Mark D.
author_sort Williamson, Rosalind C.
collection PubMed
description Sustained forward migration through a fibrillar extracellular matrix requires localization of protrusive signals. Contact with fibronectin at the tip of a cell protrusion activates Rac1, and for linear migration it is necessary to dampen Rac1 activity in off-axial positions and redistribute Rac1 from non-protrusive membrane to the leading edge. Here, we identify interactions between coronin-1C (Coro1C), RCC2 and Rac1 that focus active Rac1 to a single protrusion. Coro1C mediates release of inactive Rac1 from non-protrusive membrane and is necessary for Rac1 redistribution to a protrusive tip and fibronectin-dependent Rac1 activation. The second component, RCC2, attenuates Rac1 activation outside the protrusive tip by binding to the Rac1 switch regions and competitively inhibiting GEF action, thus preventing off-axial protrusion. Depletion of Coro1C or RCC2 by RNA interference causes loss of cell polarity that results in shunting migration in 1D or 3D culture systems. Furthermore, morpholinos against Coro1C or RCC2, or mutation of any of the binding sites in the Rac1–RCC2–Coro1C complex delays the arrival of neural crest derivatives at the correct location in developing zebrafish, demonstrating the crucial role in migration guidance in vivo.
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spelling pubmed-41794932014-10-09 Coronin-1C and RCC2 guide mesenchymal migration by trafficking Rac1 and controlling GEF exposure Williamson, Rosalind C. Cowell, Christopher A. M. Hammond, Christina L. Bergen, Dylan J. M. Roper, James A. Feng, Yi Rendall, Thomas C. S. Race, Paul R. Bass, Mark D. J Cell Sci Research Article Sustained forward migration through a fibrillar extracellular matrix requires localization of protrusive signals. Contact with fibronectin at the tip of a cell protrusion activates Rac1, and for linear migration it is necessary to dampen Rac1 activity in off-axial positions and redistribute Rac1 from non-protrusive membrane to the leading edge. Here, we identify interactions between coronin-1C (Coro1C), RCC2 and Rac1 that focus active Rac1 to a single protrusion. Coro1C mediates release of inactive Rac1 from non-protrusive membrane and is necessary for Rac1 redistribution to a protrusive tip and fibronectin-dependent Rac1 activation. The second component, RCC2, attenuates Rac1 activation outside the protrusive tip by binding to the Rac1 switch regions and competitively inhibiting GEF action, thus preventing off-axial protrusion. Depletion of Coro1C or RCC2 by RNA interference causes loss of cell polarity that results in shunting migration in 1D or 3D culture systems. Furthermore, morpholinos against Coro1C or RCC2, or mutation of any of the binding sites in the Rac1–RCC2–Coro1C complex delays the arrival of neural crest derivatives at the correct location in developing zebrafish, demonstrating the crucial role in migration guidance in vivo. The Company of Biologists 2014-10-01 /pmc/articles/PMC4179493/ /pubmed/25074804 http://dx.doi.org/10.1242/jcs.154864 Text en © 2014. Published by The Company of Biologists Ltd http://creativecommons.org/licenses/by/3.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/3.0), which permits unrestricted use, distribution and reproduction in any medium provided that the original work is properly attributed.
spellingShingle Research Article
Williamson, Rosalind C.
Cowell, Christopher A. M.
Hammond, Christina L.
Bergen, Dylan J. M.
Roper, James A.
Feng, Yi
Rendall, Thomas C. S.
Race, Paul R.
Bass, Mark D.
Coronin-1C and RCC2 guide mesenchymal migration by trafficking Rac1 and controlling GEF exposure
title Coronin-1C and RCC2 guide mesenchymal migration by trafficking Rac1 and controlling GEF exposure
title_full Coronin-1C and RCC2 guide mesenchymal migration by trafficking Rac1 and controlling GEF exposure
title_fullStr Coronin-1C and RCC2 guide mesenchymal migration by trafficking Rac1 and controlling GEF exposure
title_full_unstemmed Coronin-1C and RCC2 guide mesenchymal migration by trafficking Rac1 and controlling GEF exposure
title_short Coronin-1C and RCC2 guide mesenchymal migration by trafficking Rac1 and controlling GEF exposure
title_sort coronin-1c and rcc2 guide mesenchymal migration by trafficking rac1 and controlling gef exposure
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4179493/
https://www.ncbi.nlm.nih.gov/pubmed/25074804
http://dx.doi.org/10.1242/jcs.154864
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