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Molecular brakes regulating mTORC1 activation in skeletal muscle following synergist ablation

The goal of the current work was to profile positive (mTORC1 activation, autocrine/paracrine growth factors) and negative [AMPK, unfolded protein response (UPR)] pathways that might regulate overload-induced mTORC1 (mTOR complex 1) activation with the hypothesis that a number of negative regulators...

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Autores principales: Lee Hamilton, D., Philp, Andrew, MacKenzie, Matthew G., Patton, Amy, Towler, Mhairi C., Gallagher, Iain J., Bodine, Sue C., Baar, Keith
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Physiological Society 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4137116/
https://www.ncbi.nlm.nih.gov/pubmed/24961241
http://dx.doi.org/10.1152/ajpendo.00674.2013
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author Lee Hamilton, D.
Philp, Andrew
MacKenzie, Matthew G.
Patton, Amy
Towler, Mhairi C.
Gallagher, Iain J.
Bodine, Sue C.
Baar, Keith
author_facet Lee Hamilton, D.
Philp, Andrew
MacKenzie, Matthew G.
Patton, Amy
Towler, Mhairi C.
Gallagher, Iain J.
Bodine, Sue C.
Baar, Keith
author_sort Lee Hamilton, D.
collection PubMed
description The goal of the current work was to profile positive (mTORC1 activation, autocrine/paracrine growth factors) and negative [AMPK, unfolded protein response (UPR)] pathways that might regulate overload-induced mTORC1 (mTOR complex 1) activation with the hypothesis that a number of negative regulators of mTORC1 will be engaged during a supraphysiological model of hypertrophy. To achieve this, mTORC1-IRS-1/2 signaling, BiP/CHOP/IRE1α, and AMPK activation were determined in rat plantaris muscle following synergist ablation (SA). SA resulted in significant increases in muscle mass of ∼4% per day throughout the 21 days of the experiment. The expression of the insulin-like growth factors (IGF) were high throughout the 21st day of overload. However, IGF signaling was limited, since IRS-1 and -2 were undetectable in the overloaded muscle from day 3 to day 9. The decreases in IRS-1/2 protein were paralleled by increases in GRB10 Ser(501/503) and S6K1 Thr(389) phosphorylation, two mTORC1 targets that can destabilize IRS proteins. PKB Ser(473) phosphorylation was higher from 3–6 days, and this was associated with increased TSC2 Thr(939) phosphorylation. The phosphorylation of TSC2 (Thr1345) (an AMPK site) was also elevated, whereas phosphorylation at the other PKB site, Thr(1462), was unchanged at 6 days. In agreement with the phosphorylation of Thr(1345), SA led to activation of AMPKα1 during the initial growth phase, lasting the first 9 days before returning to baseline by day 12. The UPR markers CHOP and BiP were elevated over the first 12 days following ablation, whereas IRE1α levels decreased. These data suggest that during supraphysiological muscle loading at least three potential molecular brakes engage to downregulate mTORC1.
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spelling pubmed-41371162014-08-20 Molecular brakes regulating mTORC1 activation in skeletal muscle following synergist ablation Lee Hamilton, D. Philp, Andrew MacKenzie, Matthew G. Patton, Amy Towler, Mhairi C. Gallagher, Iain J. Bodine, Sue C. Baar, Keith Am J Physiol Endocrinol Metab Articles The goal of the current work was to profile positive (mTORC1 activation, autocrine/paracrine growth factors) and negative [AMPK, unfolded protein response (UPR)] pathways that might regulate overload-induced mTORC1 (mTOR complex 1) activation with the hypothesis that a number of negative regulators of mTORC1 will be engaged during a supraphysiological model of hypertrophy. To achieve this, mTORC1-IRS-1/2 signaling, BiP/CHOP/IRE1α, and AMPK activation were determined in rat plantaris muscle following synergist ablation (SA). SA resulted in significant increases in muscle mass of ∼4% per day throughout the 21 days of the experiment. The expression of the insulin-like growth factors (IGF) were high throughout the 21st day of overload. However, IGF signaling was limited, since IRS-1 and -2 were undetectable in the overloaded muscle from day 3 to day 9. The decreases in IRS-1/2 protein were paralleled by increases in GRB10 Ser(501/503) and S6K1 Thr(389) phosphorylation, two mTORC1 targets that can destabilize IRS proteins. PKB Ser(473) phosphorylation was higher from 3–6 days, and this was associated with increased TSC2 Thr(939) phosphorylation. The phosphorylation of TSC2 (Thr1345) (an AMPK site) was also elevated, whereas phosphorylation at the other PKB site, Thr(1462), was unchanged at 6 days. In agreement with the phosphorylation of Thr(1345), SA led to activation of AMPKα1 during the initial growth phase, lasting the first 9 days before returning to baseline by day 12. The UPR markers CHOP and BiP were elevated over the first 12 days following ablation, whereas IRE1α levels decreased. These data suggest that during supraphysiological muscle loading at least three potential molecular brakes engage to downregulate mTORC1. American Physiological Society 2014-06-24 2014-08-15 /pmc/articles/PMC4137116/ /pubmed/24961241 http://dx.doi.org/10.1152/ajpendo.00674.2013 Text en Copyright © 2014 the American Physiological Society Licensed under Creative Commons CC-BY 3.0 (http://creativecommons.org/licenses/by/3.0/deed.en_US) : the American Physiological Society.
spellingShingle Articles
Lee Hamilton, D.
Philp, Andrew
MacKenzie, Matthew G.
Patton, Amy
Towler, Mhairi C.
Gallagher, Iain J.
Bodine, Sue C.
Baar, Keith
Molecular brakes regulating mTORC1 activation in skeletal muscle following synergist ablation
title Molecular brakes regulating mTORC1 activation in skeletal muscle following synergist ablation
title_full Molecular brakes regulating mTORC1 activation in skeletal muscle following synergist ablation
title_fullStr Molecular brakes regulating mTORC1 activation in skeletal muscle following synergist ablation
title_full_unstemmed Molecular brakes regulating mTORC1 activation in skeletal muscle following synergist ablation
title_short Molecular brakes regulating mTORC1 activation in skeletal muscle following synergist ablation
title_sort molecular brakes regulating mtorc1 activation in skeletal muscle following synergist ablation
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4137116/
https://www.ncbi.nlm.nih.gov/pubmed/24961241
http://dx.doi.org/10.1152/ajpendo.00674.2013
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