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Loss of MyoD Promotes Fate Transdifferentiation of Myoblasts Into Brown Adipocytes

Brown adipose tissue (BAT) represents a promising agent to ameliorate obesity and other metabolic disorders. However, the abundance of BAT decreases with age and BAT paucity is a common feature of obese subjects. As brown adipocytes and myoblasts share a common Myf5 lineage origin, elucidating the m...

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Autores principales: Wang, Chao, Liu, Weiyi, Nie, Yaohui, Qaher, Mulan, Horton, Hannah Elizabeth, Yue, Feng, Asakura, Atsushi, Kuang, Shihuan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5474440/
https://www.ncbi.nlm.nih.gov/pubmed/28117277
http://dx.doi.org/10.1016/j.ebiom.2017.01.015
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author Wang, Chao
Liu, Weiyi
Nie, Yaohui
Qaher, Mulan
Horton, Hannah Elizabeth
Yue, Feng
Asakura, Atsushi
Kuang, Shihuan
author_facet Wang, Chao
Liu, Weiyi
Nie, Yaohui
Qaher, Mulan
Horton, Hannah Elizabeth
Yue, Feng
Asakura, Atsushi
Kuang, Shihuan
author_sort Wang, Chao
collection PubMed
description Brown adipose tissue (BAT) represents a promising agent to ameliorate obesity and other metabolic disorders. However, the abundance of BAT decreases with age and BAT paucity is a common feature of obese subjects. As brown adipocytes and myoblasts share a common Myf5 lineage origin, elucidating the molecular mechanisms underlying the fate choices of brown adipocytes versus myoblasts may lead to novel approaches to expand BAT mass. Here we identify MyoD as a key negative regulator of brown adipocyte development. CRISPR/CAS9-mediated deletion of MyoD in C2C12 myoblasts facilitates their adipogenic transdifferentiation. MyoD knockout downregulates miR-133 and upregulates the miR-133 target Igf1r, leading to amplification of PI3K–Akt signaling. Accordingly, inhibition of PI3K or Akt abolishes the adipogenic gene expression of MyoD null myoblasts. Strikingly, loss of MyoD converts satellite cell-derived primary myoblasts to brown adipocytes through upregulation of Prdm16, a target of miR-133 and key determinant of brown adipocyte fate. Conversely, forced expression of MyoD in brown preadipocytes blocks brown adipogenesis and upregulates the expression of myogenic genes. Importantly, miR-133a knockout significantly blunts the inhibitory effect of MyoD on brown adipogenesis. Our results establish MyoD as a negative regulator of brown adipocyte development by upregulating miR-133 to suppress Akt signaling and Prdm16.
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spelling pubmed-54744402017-06-26 Loss of MyoD Promotes Fate Transdifferentiation of Myoblasts Into Brown Adipocytes Wang, Chao Liu, Weiyi Nie, Yaohui Qaher, Mulan Horton, Hannah Elizabeth Yue, Feng Asakura, Atsushi Kuang, Shihuan EBioMedicine Research Paper Brown adipose tissue (BAT) represents a promising agent to ameliorate obesity and other metabolic disorders. However, the abundance of BAT decreases with age and BAT paucity is a common feature of obese subjects. As brown adipocytes and myoblasts share a common Myf5 lineage origin, elucidating the molecular mechanisms underlying the fate choices of brown adipocytes versus myoblasts may lead to novel approaches to expand BAT mass. Here we identify MyoD as a key negative regulator of brown adipocyte development. CRISPR/CAS9-mediated deletion of MyoD in C2C12 myoblasts facilitates their adipogenic transdifferentiation. MyoD knockout downregulates miR-133 and upregulates the miR-133 target Igf1r, leading to amplification of PI3K–Akt signaling. Accordingly, inhibition of PI3K or Akt abolishes the adipogenic gene expression of MyoD null myoblasts. Strikingly, loss of MyoD converts satellite cell-derived primary myoblasts to brown adipocytes through upregulation of Prdm16, a target of miR-133 and key determinant of brown adipocyte fate. Conversely, forced expression of MyoD in brown preadipocytes blocks brown adipogenesis and upregulates the expression of myogenic genes. Importantly, miR-133a knockout significantly blunts the inhibitory effect of MyoD on brown adipogenesis. Our results establish MyoD as a negative regulator of brown adipocyte development by upregulating miR-133 to suppress Akt signaling and Prdm16. Elsevier 2017-01-13 /pmc/articles/PMC5474440/ /pubmed/28117277 http://dx.doi.org/10.1016/j.ebiom.2017.01.015 Text en © 2017 The Authors http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Paper
Wang, Chao
Liu, Weiyi
Nie, Yaohui
Qaher, Mulan
Horton, Hannah Elizabeth
Yue, Feng
Asakura, Atsushi
Kuang, Shihuan
Loss of MyoD Promotes Fate Transdifferentiation of Myoblasts Into Brown Adipocytes
title Loss of MyoD Promotes Fate Transdifferentiation of Myoblasts Into Brown Adipocytes
title_full Loss of MyoD Promotes Fate Transdifferentiation of Myoblasts Into Brown Adipocytes
title_fullStr Loss of MyoD Promotes Fate Transdifferentiation of Myoblasts Into Brown Adipocytes
title_full_unstemmed Loss of MyoD Promotes Fate Transdifferentiation of Myoblasts Into Brown Adipocytes
title_short Loss of MyoD Promotes Fate Transdifferentiation of Myoblasts Into Brown Adipocytes
title_sort loss of myod promotes fate transdifferentiation of myoblasts into brown adipocytes
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5474440/
https://www.ncbi.nlm.nih.gov/pubmed/28117277
http://dx.doi.org/10.1016/j.ebiom.2017.01.015
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