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The Hippo pathway mediates inhibition of vascular smooth muscle cell proliferation by cAMP

AIMS: Inhibition of vascular smooth muscle cell (VSMC) proliferation by intracellular cAMP prevents excessive neointima formation and hence angioplasty restenosis and vein-graft failure. These protective effects are mediated via actin-cytoskeleton remodelling and subsequent regulation of gene expres...

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Autores principales: Kimura, Tomomi E., Duggirala, Aparna, Smith, Madeleine C., White, Stephen, Sala-Newby, Graciela B., Newby, Andrew C., Bond, Mark
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Academic Press 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4727789/
https://www.ncbi.nlm.nih.gov/pubmed/26625714
http://dx.doi.org/10.1016/j.yjmcc.2015.11.024
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author Kimura, Tomomi E.
Duggirala, Aparna
Smith, Madeleine C.
White, Stephen
Sala-Newby, Graciela B.
Newby, Andrew C.
Bond, Mark
author_facet Kimura, Tomomi E.
Duggirala, Aparna
Smith, Madeleine C.
White, Stephen
Sala-Newby, Graciela B.
Newby, Andrew C.
Bond, Mark
author_sort Kimura, Tomomi E.
collection PubMed
description AIMS: Inhibition of vascular smooth muscle cell (VSMC) proliferation by intracellular cAMP prevents excessive neointima formation and hence angioplasty restenosis and vein-graft failure. These protective effects are mediated via actin-cytoskeleton remodelling and subsequent regulation of gene expression by mechanisms that are incompletely understood. Here we investigated the role of components of the growth-regulatory Hippo pathway, specifically the transcription factor TEAD and its co-factors YAP and TAZ in VSMC. METHODS AND RESULTS: Elevation of cAMP using forskolin, dibutyryl-cAMP or the physiological agonists, Cicaprost or adenosine, significantly increased phosphorylation and nuclear export YAP and TAZ and inhibited TEAD-luciferase report gene activity. Similar effects were obtained by inhibiting RhoA activity with C3-transferase, its downstream kinase, ROCK, with Y27632, or actin-polymerisation with Latrunculin-B. Conversely, expression of constitutively-active RhoA reversed the inhibitory effects of forskolin on TEAD-luciferase. Forskolin significantly inhibited the mRNA expression of the pro-mitogenic genes, CCN1, CTGF, c-MYC and TGFB2 and this was reversed by expression of constitutively-active YAP or TAZ phospho-mutants. Inhibition of YAP and TAZ function with RNAi or Verteporfin significantly reduced VSMC proliferation. Furthermore, the anti-mitogenic effects of forskolin were reversed by overexpression of constitutively-active YAP or TAZ. CONCLUSION: Taken together, these data demonstrate that cAMP-induced actin-cytoskeleton remodelling inhibits YAP/TAZ–TEAD dependent expression of pro-mitogenic genes in VSMC. This mechanism contributes novel insight into the anti-mitogenic effects of cAMP in VSMC and suggests a new target for intervention.
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spelling pubmed-47277892016-02-22 The Hippo pathway mediates inhibition of vascular smooth muscle cell proliferation by cAMP Kimura, Tomomi E. Duggirala, Aparna Smith, Madeleine C. White, Stephen Sala-Newby, Graciela B. Newby, Andrew C. Bond, Mark J Mol Cell Cardiol Original Article AIMS: Inhibition of vascular smooth muscle cell (VSMC) proliferation by intracellular cAMP prevents excessive neointima formation and hence angioplasty restenosis and vein-graft failure. These protective effects are mediated via actin-cytoskeleton remodelling and subsequent regulation of gene expression by mechanisms that are incompletely understood. Here we investigated the role of components of the growth-regulatory Hippo pathway, specifically the transcription factor TEAD and its co-factors YAP and TAZ in VSMC. METHODS AND RESULTS: Elevation of cAMP using forskolin, dibutyryl-cAMP or the physiological agonists, Cicaprost or adenosine, significantly increased phosphorylation and nuclear export YAP and TAZ and inhibited TEAD-luciferase report gene activity. Similar effects were obtained by inhibiting RhoA activity with C3-transferase, its downstream kinase, ROCK, with Y27632, or actin-polymerisation with Latrunculin-B. Conversely, expression of constitutively-active RhoA reversed the inhibitory effects of forskolin on TEAD-luciferase. Forskolin significantly inhibited the mRNA expression of the pro-mitogenic genes, CCN1, CTGF, c-MYC and TGFB2 and this was reversed by expression of constitutively-active YAP or TAZ phospho-mutants. Inhibition of YAP and TAZ function with RNAi or Verteporfin significantly reduced VSMC proliferation. Furthermore, the anti-mitogenic effects of forskolin were reversed by overexpression of constitutively-active YAP or TAZ. CONCLUSION: Taken together, these data demonstrate that cAMP-induced actin-cytoskeleton remodelling inhibits YAP/TAZ–TEAD dependent expression of pro-mitogenic genes in VSMC. This mechanism contributes novel insight into the anti-mitogenic effects of cAMP in VSMC and suggests a new target for intervention. Academic Press 2016-01 /pmc/articles/PMC4727789/ /pubmed/26625714 http://dx.doi.org/10.1016/j.yjmcc.2015.11.024 Text en © 2015 The Authors http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Original Article
Kimura, Tomomi E.
Duggirala, Aparna
Smith, Madeleine C.
White, Stephen
Sala-Newby, Graciela B.
Newby, Andrew C.
Bond, Mark
The Hippo pathway mediates inhibition of vascular smooth muscle cell proliferation by cAMP
title The Hippo pathway mediates inhibition of vascular smooth muscle cell proliferation by cAMP
title_full The Hippo pathway mediates inhibition of vascular smooth muscle cell proliferation by cAMP
title_fullStr The Hippo pathway mediates inhibition of vascular smooth muscle cell proliferation by cAMP
title_full_unstemmed The Hippo pathway mediates inhibition of vascular smooth muscle cell proliferation by cAMP
title_short The Hippo pathway mediates inhibition of vascular smooth muscle cell proliferation by cAMP
title_sort hippo pathway mediates inhibition of vascular smooth muscle cell proliferation by camp
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4727789/
https://www.ncbi.nlm.nih.gov/pubmed/26625714
http://dx.doi.org/10.1016/j.yjmcc.2015.11.024
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