ErbB2-dependent chemotaxis requires microtubule capture and stabilization coordinated by distinct signaling pathways.
Activation of the ErbB2 receptor tyrosine kinase stimulates breast cancer cell migration. Cell migration is a complex process that requires the synchronized reorganization of numerous subcellular structures including cell-to-matrix adhesions, the actin cytoskeleton and microtubules. How the multiple...
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doaj-3b1bd85e96c045e88f2a7a3986f0712f2020-11-24T21:35:23ZengPublic Library of Science (PLoS)PLoS ONE1932-62032013-01-0181e5521110.1371/journal.pone.0055211ErbB2-dependent chemotaxis requires microtubule capture and stabilization coordinated by distinct signaling pathways.Khedidja BenseddikNadine Sen NkwePascale DaouPascal Verdier-PinardAli BadacheActivation of the ErbB2 receptor tyrosine kinase stimulates breast cancer cell migration. Cell migration is a complex process that requires the synchronized reorganization of numerous subcellular structures including cell-to-matrix adhesions, the actin cytoskeleton and microtubules. How the multiple signaling pathways triggered by ErbB2 coordinate, in time and space, the various processes involved in cell motility, is poorly defined. We investigated the mechanism whereby ErbB2 controls microtubules and chemotaxis. We report that activation of ErbB2 increased both cell velocity and directed migration. Impairment of the Cdc42 and RhoA GTPases, but not of Rac1, prevented the chemotactic response. RhoA is a key component of the Memo/ACF7 pathway whereby ErbB2 controls microtubule capture at the leading edge. Upon Memo or ACF7 depletion, microtubules failed to reach the leading edge and cells lost their ability to follow the chemotactic gradient. Constitutive ACF7 targeting to the membrane in Memo-depleted cells reestablished directed migration. ErbB2-mediated activation of phospholipase C gamma (PLCγ) also contributed to cell guidance. We further showed that PLCγ signaling, via classical protein kinases C, and Memo signaling converged towards a single pathway controlling the microtubule capture complex. Finally, inhibiting the PI3K/Akt pathway did not affect microtubule capture, but disturbed microtubule stability, which also resulted in defective chemotaxis. PI3K/Akt-dependent stabilization of microtubules involved repression of GSK3 activity on the one hand and inhibition of the microtubule destabilizing protein, Stathmin, on the other hand. Thus, ErbB2 triggers distinct and complementary pathways that tightly coordinate microtubule capture and microtubule stability to control chemotaxis.http://europepmc.org/articles/PMC3558493?pdf=render |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Khedidja Benseddik Nadine Sen Nkwe Pascale Daou Pascal Verdier-Pinard Ali Badache |
spellingShingle |
Khedidja Benseddik Nadine Sen Nkwe Pascale Daou Pascal Verdier-Pinard Ali Badache ErbB2-dependent chemotaxis requires microtubule capture and stabilization coordinated by distinct signaling pathways. PLoS ONE |
author_facet |
Khedidja Benseddik Nadine Sen Nkwe Pascale Daou Pascal Verdier-Pinard Ali Badache |
author_sort |
Khedidja Benseddik |
title |
ErbB2-dependent chemotaxis requires microtubule capture and stabilization coordinated by distinct signaling pathways. |
title_short |
ErbB2-dependent chemotaxis requires microtubule capture and stabilization coordinated by distinct signaling pathways. |
title_full |
ErbB2-dependent chemotaxis requires microtubule capture and stabilization coordinated by distinct signaling pathways. |
title_fullStr |
ErbB2-dependent chemotaxis requires microtubule capture and stabilization coordinated by distinct signaling pathways. |
title_full_unstemmed |
ErbB2-dependent chemotaxis requires microtubule capture and stabilization coordinated by distinct signaling pathways. |
title_sort |
erbb2-dependent chemotaxis requires microtubule capture and stabilization coordinated by distinct signaling pathways. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS ONE |
issn |
1932-6203 |
publishDate |
2013-01-01 |
description |
Activation of the ErbB2 receptor tyrosine kinase stimulates breast cancer cell migration. Cell migration is a complex process that requires the synchronized reorganization of numerous subcellular structures including cell-to-matrix adhesions, the actin cytoskeleton and microtubules. How the multiple signaling pathways triggered by ErbB2 coordinate, in time and space, the various processes involved in cell motility, is poorly defined. We investigated the mechanism whereby ErbB2 controls microtubules and chemotaxis. We report that activation of ErbB2 increased both cell velocity and directed migration. Impairment of the Cdc42 and RhoA GTPases, but not of Rac1, prevented the chemotactic response. RhoA is a key component of the Memo/ACF7 pathway whereby ErbB2 controls microtubule capture at the leading edge. Upon Memo or ACF7 depletion, microtubules failed to reach the leading edge and cells lost their ability to follow the chemotactic gradient. Constitutive ACF7 targeting to the membrane in Memo-depleted cells reestablished directed migration. ErbB2-mediated activation of phospholipase C gamma (PLCγ) also contributed to cell guidance. We further showed that PLCγ signaling, via classical protein kinases C, and Memo signaling converged towards a single pathway controlling the microtubule capture complex. Finally, inhibiting the PI3K/Akt pathway did not affect microtubule capture, but disturbed microtubule stability, which also resulted in defective chemotaxis. PI3K/Akt-dependent stabilization of microtubules involved repression of GSK3 activity on the one hand and inhibition of the microtubule destabilizing protein, Stathmin, on the other hand. Thus, ErbB2 triggers distinct and complementary pathways that tightly coordinate microtubule capture and microtubule stability to control chemotaxis. |
url |
http://europepmc.org/articles/PMC3558493?pdf=render |
work_keys_str_mv |
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