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Rosiglitazone drives cavin-2/SDPR expression in adipocytes in a CEBPα-dependent manner

Caveolae are abundant adipocyte surface domains involved in insulin signaling, membrane trafficking and lipid homeostasis. Transcriptional control mechanisms for caveolins and cavins, the building blocks of caveolae, are thus arguably important for adipocyte biology and studies in this area may give...

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Autores principales: Hansson, Björn, Rippe, Catarina, Kotowska, Dorota, Wasserstrom, Sebastian, Säll, Johanna, Göransson, Olga, Swärd, Karl, Stenkula, Karin G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5344386/
https://www.ncbi.nlm.nih.gov/pubmed/28278164
http://dx.doi.org/10.1371/journal.pone.0173412
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author Hansson, Björn
Rippe, Catarina
Kotowska, Dorota
Wasserstrom, Sebastian
Säll, Johanna
Göransson, Olga
Swärd, Karl
Stenkula, Karin G.
author_facet Hansson, Björn
Rippe, Catarina
Kotowska, Dorota
Wasserstrom, Sebastian
Säll, Johanna
Göransson, Olga
Swärd, Karl
Stenkula, Karin G.
author_sort Hansson, Björn
collection PubMed
description Caveolae are abundant adipocyte surface domains involved in insulin signaling, membrane trafficking and lipid homeostasis. Transcriptional control mechanisms for caveolins and cavins, the building blocks of caveolae, are thus arguably important for adipocyte biology and studies in this area may give insight into insulin resistance and diabetes. Here we addressed the hypothesis that one of the less characterized caveolar components, cavin-2 (SDPR), is controlled by CCAAT/Enhancer Binding Protein (CEBPα) and Peroxisome Proliferator-Activated Receptor Gamma (PPARG). Using human mRNA expression data we found that SDPR correlated with PPARG in several tissues. This was also observed during differentiation of 3T3-L1 fibroblasts into adipocytes. Treatment of 3T3-L1-derived adipocytes with the PPARγ-activator Rosiglitazone increased SDPR and CEBPα expression at both the mRNA and protein levels. Silencing of CEBPα antagonized these effects. Further, adenoviral expression of PPARγ/CEBPα or Rosiglitazone-treatment increased SDPR expression in primary rat adipocytes. The myocardin family coactivator MKL1 was recently shown to regulate SDPR expression in human coronary artery smooth muscle cells. However, we found that actin depolymerization, known to inhibit MKL1 and MKL2, was without effect on SDPR mRNA levels in adipocytes, even though overexpression of MKL1 and MKL2 had the capacity to increase caveolins and cavins and to repress PPARγ/CEBPα. Altogether, this work demonstrates that CEBPα expression and PPARγ-activity promote SDPR transcription and further supports the emerging notion that PPARγ/CEBPα and MKL1/MKL2 are antagonistic in adipocytes.
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spelling pubmed-53443862017-03-29 Rosiglitazone drives cavin-2/SDPR expression in adipocytes in a CEBPα-dependent manner Hansson, Björn Rippe, Catarina Kotowska, Dorota Wasserstrom, Sebastian Säll, Johanna Göransson, Olga Swärd, Karl Stenkula, Karin G. PLoS One Research Article Caveolae are abundant adipocyte surface domains involved in insulin signaling, membrane trafficking and lipid homeostasis. Transcriptional control mechanisms for caveolins and cavins, the building blocks of caveolae, are thus arguably important for adipocyte biology and studies in this area may give insight into insulin resistance and diabetes. Here we addressed the hypothesis that one of the less characterized caveolar components, cavin-2 (SDPR), is controlled by CCAAT/Enhancer Binding Protein (CEBPα) and Peroxisome Proliferator-Activated Receptor Gamma (PPARG). Using human mRNA expression data we found that SDPR correlated with PPARG in several tissues. This was also observed during differentiation of 3T3-L1 fibroblasts into adipocytes. Treatment of 3T3-L1-derived adipocytes with the PPARγ-activator Rosiglitazone increased SDPR and CEBPα expression at both the mRNA and protein levels. Silencing of CEBPα antagonized these effects. Further, adenoviral expression of PPARγ/CEBPα or Rosiglitazone-treatment increased SDPR expression in primary rat adipocytes. The myocardin family coactivator MKL1 was recently shown to regulate SDPR expression in human coronary artery smooth muscle cells. However, we found that actin depolymerization, known to inhibit MKL1 and MKL2, was without effect on SDPR mRNA levels in adipocytes, even though overexpression of MKL1 and MKL2 had the capacity to increase caveolins and cavins and to repress PPARγ/CEBPα. Altogether, this work demonstrates that CEBPα expression and PPARγ-activity promote SDPR transcription and further supports the emerging notion that PPARγ/CEBPα and MKL1/MKL2 are antagonistic in adipocytes. Public Library of Science 2017-03-09 /pmc/articles/PMC5344386/ /pubmed/28278164 http://dx.doi.org/10.1371/journal.pone.0173412 Text en © 2017 Hansson et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Hansson, Björn
Rippe, Catarina
Kotowska, Dorota
Wasserstrom, Sebastian
Säll, Johanna
Göransson, Olga
Swärd, Karl
Stenkula, Karin G.
Rosiglitazone drives cavin-2/SDPR expression in adipocytes in a CEBPα-dependent manner
title Rosiglitazone drives cavin-2/SDPR expression in adipocytes in a CEBPα-dependent manner
title_full Rosiglitazone drives cavin-2/SDPR expression in adipocytes in a CEBPα-dependent manner
title_fullStr Rosiglitazone drives cavin-2/SDPR expression in adipocytes in a CEBPα-dependent manner
title_full_unstemmed Rosiglitazone drives cavin-2/SDPR expression in adipocytes in a CEBPα-dependent manner
title_short Rosiglitazone drives cavin-2/SDPR expression in adipocytes in a CEBPα-dependent manner
title_sort rosiglitazone drives cavin-2/sdpr expression in adipocytes in a cebpα-dependent manner
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5344386/
https://www.ncbi.nlm.nih.gov/pubmed/28278164
http://dx.doi.org/10.1371/journal.pone.0173412
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