Regulation of myoblast differentiation by metabolic perturbations induced by metformin.
The metabolic perturbation caused by calorie restriction enhances muscle repair by playing a critical role in regulating satellite cell availability and activity in the muscles of young and old mice. To clarify the underlying mechanisms we asked whether myoblast replication and differentiation are a...
Main Authors: | , , , , , , |
---|---|
Format: | Article |
Language: | English |
Published: |
Public Library of Science (PLoS)
2017-01-01
|
Series: | PLoS ONE |
Online Access: | http://europepmc.org/articles/PMC5578649?pdf=render |
id |
doaj-171786cc1947415290f59dbecf8e7cc9 |
---|---|
record_format |
Article |
spelling |
doaj-171786cc1947415290f59dbecf8e7cc92020-11-24T21:49:44ZengPublic Library of Science (PLoS)PLoS ONE1932-62032017-01-01128e018247510.1371/journal.pone.0182475Regulation of myoblast differentiation by metabolic perturbations induced by metformin.Theodora PavlidouMarco RosinaClaudia FuocoGiulia GeriniCesare GargioliLuisa CastagnoliGianni CesareniThe metabolic perturbation caused by calorie restriction enhances muscle repair by playing a critical role in regulating satellite cell availability and activity in the muscles of young and old mice. To clarify the underlying mechanisms we asked whether myoblast replication and differentiation are affected by metformin, a calorie restriction-mimicking drug. C2C12, a mouse myoblast cell line, readily differentiate in vitro and fuse to form myotubes. However, when incubated with metformin, C2C12 slow their replication and do not differentiate. Interestingly, lower doses of metformin promote myogenic differentiation. We observe that metformin treatment modulates the expression of cyclins and cyclin inhibitors thereby inducing a cell cycle perturbation that causes a delay in the G2/M transition. The effect of metformin treatment is reversible since after drug withdrawal, myoblasts can re-enter the cell cycle and/or differentiate, depending on culture conditions. Myoblasts cultured under metformin treatment fail to up-regulate MyoD and p21cip1, a key step in cell cycle exit and terminal differentiation. Although the details of the molecular mechanisms underlying the effect of the drug on myoblasts still need to be clarified, we propose that metformin negatively affects myogenic differentiation by inhibiting irreversible exit from the cell cycle through reduction of MyoD and p21cip1 levels.http://europepmc.org/articles/PMC5578649?pdf=render |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Theodora Pavlidou Marco Rosina Claudia Fuoco Giulia Gerini Cesare Gargioli Luisa Castagnoli Gianni Cesareni |
spellingShingle |
Theodora Pavlidou Marco Rosina Claudia Fuoco Giulia Gerini Cesare Gargioli Luisa Castagnoli Gianni Cesareni Regulation of myoblast differentiation by metabolic perturbations induced by metformin. PLoS ONE |
author_facet |
Theodora Pavlidou Marco Rosina Claudia Fuoco Giulia Gerini Cesare Gargioli Luisa Castagnoli Gianni Cesareni |
author_sort |
Theodora Pavlidou |
title |
Regulation of myoblast differentiation by metabolic perturbations induced by metformin. |
title_short |
Regulation of myoblast differentiation by metabolic perturbations induced by metformin. |
title_full |
Regulation of myoblast differentiation by metabolic perturbations induced by metformin. |
title_fullStr |
Regulation of myoblast differentiation by metabolic perturbations induced by metformin. |
title_full_unstemmed |
Regulation of myoblast differentiation by metabolic perturbations induced by metformin. |
title_sort |
regulation of myoblast differentiation by metabolic perturbations induced by metformin. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS ONE |
issn |
1932-6203 |
publishDate |
2017-01-01 |
description |
The metabolic perturbation caused by calorie restriction enhances muscle repair by playing a critical role in regulating satellite cell availability and activity in the muscles of young and old mice. To clarify the underlying mechanisms we asked whether myoblast replication and differentiation are affected by metformin, a calorie restriction-mimicking drug. C2C12, a mouse myoblast cell line, readily differentiate in vitro and fuse to form myotubes. However, when incubated with metformin, C2C12 slow their replication and do not differentiate. Interestingly, lower doses of metformin promote myogenic differentiation. We observe that metformin treatment modulates the expression of cyclins and cyclin inhibitors thereby inducing a cell cycle perturbation that causes a delay in the G2/M transition. The effect of metformin treatment is reversible since after drug withdrawal, myoblasts can re-enter the cell cycle and/or differentiate, depending on culture conditions. Myoblasts cultured under metformin treatment fail to up-regulate MyoD and p21cip1, a key step in cell cycle exit and terminal differentiation. Although the details of the molecular mechanisms underlying the effect of the drug on myoblasts still need to be clarified, we propose that metformin negatively affects myogenic differentiation by inhibiting irreversible exit from the cell cycle through reduction of MyoD and p21cip1 levels. |
url |
http://europepmc.org/articles/PMC5578649?pdf=render |
work_keys_str_mv |
AT theodorapavlidou regulationofmyoblastdifferentiationbymetabolicperturbationsinducedbymetformin AT marcorosina regulationofmyoblastdifferentiationbymetabolicperturbationsinducedbymetformin AT claudiafuoco regulationofmyoblastdifferentiationbymetabolicperturbationsinducedbymetformin AT giuliagerini regulationofmyoblastdifferentiationbymetabolicperturbationsinducedbymetformin AT cesaregargioli regulationofmyoblastdifferentiationbymetabolicperturbationsinducedbymetformin AT luisacastagnoli regulationofmyoblastdifferentiationbymetabolicperturbationsinducedbymetformin AT giannicesareni regulationofmyoblastdifferentiationbymetabolicperturbationsinducedbymetformin |
_version_ |
1725887793557667840 |