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Phosphorylation of serine 367 of FOXC2 by p38 regulates ZEB1 and breast cancer metastasis, without impacting primary tumor growth

Metastatic competence is contingent upon the aberrant activation of a latent embryonic program, known as the epithelial–mesenchymal transition (EMT), which bestows stem cell properties as well as migratory and invasive capabilities upon differentiated tumor cells. We recently identified the transcri...

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Autores principales: Werden, S J, Sphyris, N, Sarkar, T R, Paranjape, A N, LaBaff, A M, Taube, J H, Hollier, B G, Ramirez-Peña, E Q, Soundararajan, R, den Hollander, P, Powell, E, Echeverria, G V, Miura, N, Chang, J T, Piwnica-Worms, H, Rosen, J M, Mani, S A
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5114155/
https://www.ncbi.nlm.nih.gov/pubmed/27292262
http://dx.doi.org/10.1038/onc.2016.203
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author Werden, S J
Sphyris, N
Sarkar, T R
Paranjape, A N
LaBaff, A M
Taube, J H
Hollier, B G
Ramirez-Peña, E Q
Soundararajan, R
den Hollander, P
Powell, E
Echeverria, G V
Miura, N
Chang, J T
Piwnica-Worms, H
Rosen, J M
Mani, S A
author_facet Werden, S J
Sphyris, N
Sarkar, T R
Paranjape, A N
LaBaff, A M
Taube, J H
Hollier, B G
Ramirez-Peña, E Q
Soundararajan, R
den Hollander, P
Powell, E
Echeverria, G V
Miura, N
Chang, J T
Piwnica-Worms, H
Rosen, J M
Mani, S A
author_sort Werden, S J
collection PubMed
description Metastatic competence is contingent upon the aberrant activation of a latent embryonic program, known as the epithelial–mesenchymal transition (EMT), which bestows stem cell properties as well as migratory and invasive capabilities upon differentiated tumor cells. We recently identified the transcription factor FOXC2 as a downstream effector of multiple EMT programs, independent of the EMT-inducing stimulus, and as a key player linking EMT, stem cell traits and metastatic competence in breast cancer. As such, FOXC2 could serve as a potential therapeutic target to attenuate metastasis. However, as FOXC2 is a transcription factor, it is difficult to target by conventional means such as small-molecule inhibitors. Herein, we identify the serine/threonine-specific kinase p38 as a druggable upstream regulator of FOXC2 stability and function that elicits phosphorylation of FOXC2 at serine 367 (S367). Using an orthotopic syngeneic mouse tumor model, we make the striking observation that inhibition of p38-FOXC2 signaling selectively attenuates metastasis without impacting primary tumor growth. In this model, circulating tumor cell numbers are significantly reduced in mice treated with the p38 inhibitor SB203580, relative to vehicle-treated counterparts. Accordingly, genetic or pharmacological inhibition of p38 decreases FOXC2 protein levels, reverts the EMT phenotype and compromises stem cell attributes in vitro. We also identify the EMT-regulator ZEB1—known to directly repress E-cadherin/CDH1—as a downstream target of FOXC2, critically dependent on its activation by p38. Consistent with the notion that activation of the p38-FOXC2 signaling axis represents a critical juncture in the acquisition of metastatic competence, the phosphomimetic FOXC2(S367E) mutant is refractory to p38 inhibition both in vitro and in vivo, whereas the non-phosphorylatable FOXC2(S367A) mutant fails to elicit EMT and upregulate ZEB1. Collectively, our data demonstrate that FOXC2 regulates EMT, stem cell traits, ZEB1 expression and metastasis in a p38-dependent manner, and attest to the potential utility of p38 inhibitors as antimetastatic agents.
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spelling pubmed-51141552016-12-13 Phosphorylation of serine 367 of FOXC2 by p38 regulates ZEB1 and breast cancer metastasis, without impacting primary tumor growth Werden, S J Sphyris, N Sarkar, T R Paranjape, A N LaBaff, A M Taube, J H Hollier, B G Ramirez-Peña, E Q Soundararajan, R den Hollander, P Powell, E Echeverria, G V Miura, N Chang, J T Piwnica-Worms, H Rosen, J M Mani, S A Oncogene Original Article Metastatic competence is contingent upon the aberrant activation of a latent embryonic program, known as the epithelial–mesenchymal transition (EMT), which bestows stem cell properties as well as migratory and invasive capabilities upon differentiated tumor cells. We recently identified the transcription factor FOXC2 as a downstream effector of multiple EMT programs, independent of the EMT-inducing stimulus, and as a key player linking EMT, stem cell traits and metastatic competence in breast cancer. As such, FOXC2 could serve as a potential therapeutic target to attenuate metastasis. However, as FOXC2 is a transcription factor, it is difficult to target by conventional means such as small-molecule inhibitors. Herein, we identify the serine/threonine-specific kinase p38 as a druggable upstream regulator of FOXC2 stability and function that elicits phosphorylation of FOXC2 at serine 367 (S367). Using an orthotopic syngeneic mouse tumor model, we make the striking observation that inhibition of p38-FOXC2 signaling selectively attenuates metastasis without impacting primary tumor growth. In this model, circulating tumor cell numbers are significantly reduced in mice treated with the p38 inhibitor SB203580, relative to vehicle-treated counterparts. Accordingly, genetic or pharmacological inhibition of p38 decreases FOXC2 protein levels, reverts the EMT phenotype and compromises stem cell attributes in vitro. We also identify the EMT-regulator ZEB1—known to directly repress E-cadherin/CDH1—as a downstream target of FOXC2, critically dependent on its activation by p38. Consistent with the notion that activation of the p38-FOXC2 signaling axis represents a critical juncture in the acquisition of metastatic competence, the phosphomimetic FOXC2(S367E) mutant is refractory to p38 inhibition both in vitro and in vivo, whereas the non-phosphorylatable FOXC2(S367A) mutant fails to elicit EMT and upregulate ZEB1. Collectively, our data demonstrate that FOXC2 regulates EMT, stem cell traits, ZEB1 expression and metastasis in a p38-dependent manner, and attest to the potential utility of p38 inhibitors as antimetastatic agents. Nature Publishing Group 2016-11-17 2016-06-13 /pmc/articles/PMC5114155/ /pubmed/27292262 http://dx.doi.org/10.1038/onc.2016.203 Text en Copyright © 2016 Macmillan Publishers Limited http://creativecommons.org/licenses/by-nc-nd/4.0/ This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivs 4.0 International License. The images or other third party material in this article are included in the article's Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by-nc-nd/4.0/
spellingShingle Original Article
Werden, S J
Sphyris, N
Sarkar, T R
Paranjape, A N
LaBaff, A M
Taube, J H
Hollier, B G
Ramirez-Peña, E Q
Soundararajan, R
den Hollander, P
Powell, E
Echeverria, G V
Miura, N
Chang, J T
Piwnica-Worms, H
Rosen, J M
Mani, S A
Phosphorylation of serine 367 of FOXC2 by p38 regulates ZEB1 and breast cancer metastasis, without impacting primary tumor growth
title Phosphorylation of serine 367 of FOXC2 by p38 regulates ZEB1 and breast cancer metastasis, without impacting primary tumor growth
title_full Phosphorylation of serine 367 of FOXC2 by p38 regulates ZEB1 and breast cancer metastasis, without impacting primary tumor growth
title_fullStr Phosphorylation of serine 367 of FOXC2 by p38 regulates ZEB1 and breast cancer metastasis, without impacting primary tumor growth
title_full_unstemmed Phosphorylation of serine 367 of FOXC2 by p38 regulates ZEB1 and breast cancer metastasis, without impacting primary tumor growth
title_short Phosphorylation of serine 367 of FOXC2 by p38 regulates ZEB1 and breast cancer metastasis, without impacting primary tumor growth
title_sort phosphorylation of serine 367 of foxc2 by p38 regulates zeb1 and breast cancer metastasis, without impacting primary tumor growth
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5114155/
https://www.ncbi.nlm.nih.gov/pubmed/27292262
http://dx.doi.org/10.1038/onc.2016.203
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