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Inhibition of in vitro and in vivo brown fat differentiation program by myostatin

Obesity arises mainly due to the imbalance between energy storage and its expenditure. Metabolically active brown adipose tissue (BAT) has recently been detected in humans and has been proposed as a new target for anti-obesity therapy because of its unique capacity to regulate energy expenditure. My...

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Autores principales: Braga, Melissa, Pervin, Shehla, Norris, Keith, Bhasin, Shalender, Singh, Rajan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3735638/
https://www.ncbi.nlm.nih.gov/pubmed/23868854
http://dx.doi.org/10.1002/oby.20117
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author Braga, Melissa
Pervin, Shehla
Norris, Keith
Bhasin, Shalender
Singh, Rajan
author_facet Braga, Melissa
Pervin, Shehla
Norris, Keith
Bhasin, Shalender
Singh, Rajan
author_sort Braga, Melissa
collection PubMed
description Obesity arises mainly due to the imbalance between energy storage and its expenditure. Metabolically active brown adipose tissue (BAT) has recently been detected in humans and has been proposed as a new target for anti-obesity therapy because of its unique capacity to regulate energy expenditure. Myostatin (Mst), a negative regulator of muscle mass, has been identified as a potential target to regulate overall body composition. While the beneficial effects of Mst inhibition on muscle mass are well known, its role in the regulation of lipid metabolism, and energy expenditure is not very clear. We tested the effects of Mst inhibition on the gene regulatory networks that control BAT differentiation using both in vivo and in vitro model systems. PRDM16 and UCP1, two key regulators of brown fat differentiation were significantly up regulated in levator-ani (LA) and gastrocnemius (Gastroc) muscles as well as in epididymal (Epi) and subcutaneous (SC) fat pads isolated from Mst knock out (Mst KO) male mice compared to wild type (WT) mice. Using mouse embryonic fibroblast (MEFs) primary cultures obtained from Mst KO group compared to the WT group undergoing adipogenic differentiation, we also demonstrate a significant increase in select genes and proteins that improve lipid metabolism and energy expenditure. Furthermore, treatment of Mst KO MEFs with recombinant Mst protein significantly inhibited the gene expression levels of UCP1, PRDM16, PGC1-α/β as well as BMP7. Future studies to extend these findings and explore the therapeutic potential of Mst inhibition on metabolic disorders are warranted.
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spelling pubmed-37356382014-01-19 Inhibition of in vitro and in vivo brown fat differentiation program by myostatin Braga, Melissa Pervin, Shehla Norris, Keith Bhasin, Shalender Singh, Rajan Obesity (Silver Spring) Article Obesity arises mainly due to the imbalance between energy storage and its expenditure. Metabolically active brown adipose tissue (BAT) has recently been detected in humans and has been proposed as a new target for anti-obesity therapy because of its unique capacity to regulate energy expenditure. Myostatin (Mst), a negative regulator of muscle mass, has been identified as a potential target to regulate overall body composition. While the beneficial effects of Mst inhibition on muscle mass are well known, its role in the regulation of lipid metabolism, and energy expenditure is not very clear. We tested the effects of Mst inhibition on the gene regulatory networks that control BAT differentiation using both in vivo and in vitro model systems. PRDM16 and UCP1, two key regulators of brown fat differentiation were significantly up regulated in levator-ani (LA) and gastrocnemius (Gastroc) muscles as well as in epididymal (Epi) and subcutaneous (SC) fat pads isolated from Mst knock out (Mst KO) male mice compared to wild type (WT) mice. Using mouse embryonic fibroblast (MEFs) primary cultures obtained from Mst KO group compared to the WT group undergoing adipogenic differentiation, we also demonstrate a significant increase in select genes and proteins that improve lipid metabolism and energy expenditure. Furthermore, treatment of Mst KO MEFs with recombinant Mst protein significantly inhibited the gene expression levels of UCP1, PRDM16, PGC1-α/β as well as BMP7. Future studies to extend these findings and explore the therapeutic potential of Mst inhibition on metabolic disorders are warranted. 2013-07-19 2013-06 /pmc/articles/PMC3735638/ /pubmed/23868854 http://dx.doi.org/10.1002/oby.20117 Text en http://www.nature.com/authors/editorial_policies/license.html#terms Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use:http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Braga, Melissa
Pervin, Shehla
Norris, Keith
Bhasin, Shalender
Singh, Rajan
Inhibition of in vitro and in vivo brown fat differentiation program by myostatin
title Inhibition of in vitro and in vivo brown fat differentiation program by myostatin
title_full Inhibition of in vitro and in vivo brown fat differentiation program by myostatin
title_fullStr Inhibition of in vitro and in vivo brown fat differentiation program by myostatin
title_full_unstemmed Inhibition of in vitro and in vivo brown fat differentiation program by myostatin
title_short Inhibition of in vitro and in vivo brown fat differentiation program by myostatin
title_sort inhibition of in vitro and in vivo brown fat differentiation program by myostatin
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3735638/
https://www.ncbi.nlm.nih.gov/pubmed/23868854
http://dx.doi.org/10.1002/oby.20117
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