Distinct adipocyte progenitor cells are associated with regional phenotypes of perivascular aortic fat in mice

Objective: Perivascular adipose tissue depots around the aorta are regionally distinct and have specific functional properties. Thoracic aorta perivascular adipose tissue (tPVAT) expresses higher levels of thermogenic genes and lower levels of inflammatory genes than abdominal aorta perivascular adi...

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Main Authors: Khanh-Van Tran, Timothy Fitzgibbons, So Yun Min, Tiffany DeSouza, Silvia Corvera
Format: Article
Language:English
Published: Elsevier 2018-03-01
Series:Molecular Metabolism
Online Access:http://www.sciencedirect.com/science/article/pii/S2212877817309754
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spelling doaj-63890915d1db4182bc30cf86ff5499e32020-11-24T23:41:43ZengElsevierMolecular Metabolism2212-87782018-03-019199206Distinct adipocyte progenitor cells are associated with regional phenotypes of perivascular aortic fat in miceKhanh-Van Tran0Timothy Fitzgibbons1So Yun Min2Tiffany DeSouza3Silvia Corvera4Program in Molecular Medicine, University of Massachusetts Medical School, Worcester, MA, 01655, USA; Department of Medicine, University of Massachusetts Medical School, Worcester, MA, 01655, USA; Corresponding author. University of Massachusetts Medical School, 368 Plantation Street, AS7-1018, Worcester, MA, 01605, USA.Program in Molecular Medicine, University of Massachusetts Medical School, Worcester, MA, 01655, USA; Department of Medicine, University of Massachusetts Medical School, Worcester, MA, 01655, USAProgram in Molecular Medicine, University of Massachusetts Medical School, Worcester, MA, 01655, USAProgram in Molecular Medicine, University of Massachusetts Medical School, Worcester, MA, 01655, USAProgram in Molecular Medicine, University of Massachusetts Medical School, Worcester, MA, 01655, USAObjective: Perivascular adipose tissue depots around the aorta are regionally distinct and have specific functional properties. Thoracic aorta perivascular adipose tissue (tPVAT) expresses higher levels of thermogenic genes and lower levels of inflammatory genes than abdominal aorta perivascular adipose tissue (aPVAT). It is not known whether this distinction is due to the in-vivo functional environment or to cell-autonomous traits that persist outside the in-vivo setting. In this study, we asked whether the progenitor cells in tPVAT and aPVAT have cell-autonomous traits that lead to formation of regionally distinct PVAT. Methods: We performed microarray analysis of thoracic and abdominal peri-aortic adipose tissues of C57Bl/6J mice to define gene expression profile of each depot. To derive adipocyte progenitor cells, C57Bl/6J mice were sacrificed and thoracic and abdominal aorta fragments were embedded in Matrigel and cultured under pro-angiogenic conditions. Adipogenesis was induced using the Ppar-γ agonist rosiglitazone, a thiazolidinedione (TZD). TZD-induced adipocyte populations were analyzed using immunofluorescence and qRT-PCR. Results: Microarray analysis showed that tPVAT expressed higher levels of transcription factors related brown adipose tissue development compared to aPVAT. Classic brown adipose tissue (BAT) genes such as Ucp-1, Prdm16, Dio2, Slc27a displayed a concordant trend of higher level expression in tPVAT, while white adipose tissue (WAT) genes such as Hoxc8, Nnat, Sncg, and Mest were expressed at a higher level in aPVAT. The adipokines resistin and retinol binding protein 4 were also higher in aPVAT. Furthermore, adipocyte progenitors from abdominal and thoracic aortic rings responded to TZD with expression of canonical adipocyte genes Acrp30, Plin1, and Glut4. Adipocytes differentiated from thoracic aorta progenitors displayed markedly higher induction of Ucp-1 and Cidea. Conclusions: Thoracic aorta PVAT expresses higher levels of brown adipocyte transcription factors than aPVAT. Precursor cells from the thoracic aorta give rise to adipocytes that express significantly higher levels of Ucp-1 and Cidea ex vivo, suggesting that progenitor cells in tPVAT and aPVAT have cell-autonomous properties that dictate adipocyte phenotype. Keywords: Perivascular adipose tissue, Adipocyte precursors, Progenitors, Ucp-1, Adipogenesis, Aortahttp://www.sciencedirect.com/science/article/pii/S2212877817309754
collection DOAJ
language English
format Article
sources DOAJ
author Khanh-Van Tran
Timothy Fitzgibbons
So Yun Min
Tiffany DeSouza
Silvia Corvera
spellingShingle Khanh-Van Tran
Timothy Fitzgibbons
So Yun Min
Tiffany DeSouza
Silvia Corvera
Distinct adipocyte progenitor cells are associated with regional phenotypes of perivascular aortic fat in mice
Molecular Metabolism
author_facet Khanh-Van Tran
Timothy Fitzgibbons
So Yun Min
Tiffany DeSouza
Silvia Corvera
author_sort Khanh-Van Tran
title Distinct adipocyte progenitor cells are associated with regional phenotypes of perivascular aortic fat in mice
title_short Distinct adipocyte progenitor cells are associated with regional phenotypes of perivascular aortic fat in mice
title_full Distinct adipocyte progenitor cells are associated with regional phenotypes of perivascular aortic fat in mice
title_fullStr Distinct adipocyte progenitor cells are associated with regional phenotypes of perivascular aortic fat in mice
title_full_unstemmed Distinct adipocyte progenitor cells are associated with regional phenotypes of perivascular aortic fat in mice
title_sort distinct adipocyte progenitor cells are associated with regional phenotypes of perivascular aortic fat in mice
publisher Elsevier
series Molecular Metabolism
issn 2212-8778
publishDate 2018-03-01
description Objective: Perivascular adipose tissue depots around the aorta are regionally distinct and have specific functional properties. Thoracic aorta perivascular adipose tissue (tPVAT) expresses higher levels of thermogenic genes and lower levels of inflammatory genes than abdominal aorta perivascular adipose tissue (aPVAT). It is not known whether this distinction is due to the in-vivo functional environment or to cell-autonomous traits that persist outside the in-vivo setting. In this study, we asked whether the progenitor cells in tPVAT and aPVAT have cell-autonomous traits that lead to formation of regionally distinct PVAT. Methods: We performed microarray analysis of thoracic and abdominal peri-aortic adipose tissues of C57Bl/6J mice to define gene expression profile of each depot. To derive adipocyte progenitor cells, C57Bl/6J mice were sacrificed and thoracic and abdominal aorta fragments were embedded in Matrigel and cultured under pro-angiogenic conditions. Adipogenesis was induced using the Ppar-γ agonist rosiglitazone, a thiazolidinedione (TZD). TZD-induced adipocyte populations were analyzed using immunofluorescence and qRT-PCR. Results: Microarray analysis showed that tPVAT expressed higher levels of transcription factors related brown adipose tissue development compared to aPVAT. Classic brown adipose tissue (BAT) genes such as Ucp-1, Prdm16, Dio2, Slc27a displayed a concordant trend of higher level expression in tPVAT, while white adipose tissue (WAT) genes such as Hoxc8, Nnat, Sncg, and Mest were expressed at a higher level in aPVAT. The adipokines resistin and retinol binding protein 4 were also higher in aPVAT. Furthermore, adipocyte progenitors from abdominal and thoracic aortic rings responded to TZD with expression of canonical adipocyte genes Acrp30, Plin1, and Glut4. Adipocytes differentiated from thoracic aorta progenitors displayed markedly higher induction of Ucp-1 and Cidea. Conclusions: Thoracic aorta PVAT expresses higher levels of brown adipocyte transcription factors than aPVAT. Precursor cells from the thoracic aorta give rise to adipocytes that express significantly higher levels of Ucp-1 and Cidea ex vivo, suggesting that progenitor cells in tPVAT and aPVAT have cell-autonomous properties that dictate adipocyte phenotype. Keywords: Perivascular adipose tissue, Adipocyte precursors, Progenitors, Ucp-1, Adipogenesis, Aorta
url http://www.sciencedirect.com/science/article/pii/S2212877817309754
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