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Altered amyloid precursor protein processing regulates glucose uptake and oxidation in cultured rodent myotubes

AIMS/HYPOTHESIS: Impaired glucose uptake in skeletal muscle is an important contributor to glucose intolerance in type 2 diabetes. The aspartate protease, beta-site APP-cleaving enzyme 1 (BACE1), a critical regulator of amyloid precursor protein (APP) processing, modulates in vivo glucose disposal a...

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Autores principales: Hamilton, D. Lee, Findlay, John A., Montagut, Gemma, Meakin, Paul J., Bestow, Dawn, Jalicy, Susan M., Ashford, Michael L. J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer Berlin Heidelberg 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4079947/
https://www.ncbi.nlm.nih.gov/pubmed/24849570
http://dx.doi.org/10.1007/s00125-014-3269-x
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author Hamilton, D. Lee
Findlay, John A.
Montagut, Gemma
Meakin, Paul J.
Bestow, Dawn
Jalicy, Susan M.
Ashford, Michael L. J.
author_facet Hamilton, D. Lee
Findlay, John A.
Montagut, Gemma
Meakin, Paul J.
Bestow, Dawn
Jalicy, Susan M.
Ashford, Michael L. J.
author_sort Hamilton, D. Lee
collection PubMed
description AIMS/HYPOTHESIS: Impaired glucose uptake in skeletal muscle is an important contributor to glucose intolerance in type 2 diabetes. The aspartate protease, beta-site APP-cleaving enzyme 1 (BACE1), a critical regulator of amyloid precursor protein (APP) processing, modulates in vivo glucose disposal and insulin sensitivity in mice. Insulin-independent pathways to stimulate glucose uptake and GLUT4 translocation may offer alternative therapeutic avenues for the treatment of diabetes. We therefore addressed whether BACE1 activity, via APP processing, in skeletal muscle modifies glucose uptake and oxidation independently of insulin. METHODS: Skeletal muscle cell lines were used to investigate the effects of BACE1 and α-secretase inhibition and BACE1 and APP overexpression on glucose uptake, GLUT4 cell surface translocation, glucose oxidation and cellular respiration. RESULTS: In the absence of insulin, reduction of BACE1 activity increased glucose uptake and oxidation, GLUT4myc cell surface translocation, and basal rate of oxygen consumption. In contrast, overexpressing BACE1 in C(2)C(12) myotubes decreased glucose uptake, glucose oxidation and oxygen consumption rate. APP overexpression increased and α-secretase inhibition decreased glucose uptake in C(2)C(12) myotubes. The increase in glucose uptake elicited by BACE1 inhibition is dependent on phosphoinositide 3-kinase (PI3K) and mimicked by soluble APPα (sAPPα). CONCLUSIONS/INTERPRETATION: Inhibition of muscle BACE1 activity increases insulin-independent, PI3K-dependent glucose uptake and cell surface translocation of GLUT4. As APP overexpression raises basal glucose uptake, and direct application of sAPPα increases PI3K–protein kinase B signalling and glucose uptake in myotubes, we suggest that α-secretase-dependent shedding of sAPPα regulates insulin-independent glucose uptake in skeletal muscle.
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spelling pubmed-40799472014-07-21 Altered amyloid precursor protein processing regulates glucose uptake and oxidation in cultured rodent myotubes Hamilton, D. Lee Findlay, John A. Montagut, Gemma Meakin, Paul J. Bestow, Dawn Jalicy, Susan M. Ashford, Michael L. J. Diabetologia Article AIMS/HYPOTHESIS: Impaired glucose uptake in skeletal muscle is an important contributor to glucose intolerance in type 2 diabetes. The aspartate protease, beta-site APP-cleaving enzyme 1 (BACE1), a critical regulator of amyloid precursor protein (APP) processing, modulates in vivo glucose disposal and insulin sensitivity in mice. Insulin-independent pathways to stimulate glucose uptake and GLUT4 translocation may offer alternative therapeutic avenues for the treatment of diabetes. We therefore addressed whether BACE1 activity, via APP processing, in skeletal muscle modifies glucose uptake and oxidation independently of insulin. METHODS: Skeletal muscle cell lines were used to investigate the effects of BACE1 and α-secretase inhibition and BACE1 and APP overexpression on glucose uptake, GLUT4 cell surface translocation, glucose oxidation and cellular respiration. RESULTS: In the absence of insulin, reduction of BACE1 activity increased glucose uptake and oxidation, GLUT4myc cell surface translocation, and basal rate of oxygen consumption. In contrast, overexpressing BACE1 in C(2)C(12) myotubes decreased glucose uptake, glucose oxidation and oxygen consumption rate. APP overexpression increased and α-secretase inhibition decreased glucose uptake in C(2)C(12) myotubes. The increase in glucose uptake elicited by BACE1 inhibition is dependent on phosphoinositide 3-kinase (PI3K) and mimicked by soluble APPα (sAPPα). CONCLUSIONS/INTERPRETATION: Inhibition of muscle BACE1 activity increases insulin-independent, PI3K-dependent glucose uptake and cell surface translocation of GLUT4. As APP overexpression raises basal glucose uptake, and direct application of sAPPα increases PI3K–protein kinase B signalling and glucose uptake in myotubes, we suggest that α-secretase-dependent shedding of sAPPα regulates insulin-independent glucose uptake in skeletal muscle. Springer Berlin Heidelberg 2014-05-22 2014 /pmc/articles/PMC4079947/ /pubmed/24849570 http://dx.doi.org/10.1007/s00125-014-3269-x Text en © The Author(s) 2014 https://creativecommons.org/licenses/by/4.0/ Open Access This article is distributed under the terms of the Creative Commons Attribution License which permits any use, distribution, and reproduction in any medium, provided the original author(s) and the source are credited.
spellingShingle Article
Hamilton, D. Lee
Findlay, John A.
Montagut, Gemma
Meakin, Paul J.
Bestow, Dawn
Jalicy, Susan M.
Ashford, Michael L. J.
Altered amyloid precursor protein processing regulates glucose uptake and oxidation in cultured rodent myotubes
title Altered amyloid precursor protein processing regulates glucose uptake and oxidation in cultured rodent myotubes
title_full Altered amyloid precursor protein processing regulates glucose uptake and oxidation in cultured rodent myotubes
title_fullStr Altered amyloid precursor protein processing regulates glucose uptake and oxidation in cultured rodent myotubes
title_full_unstemmed Altered amyloid precursor protein processing regulates glucose uptake and oxidation in cultured rodent myotubes
title_short Altered amyloid precursor protein processing regulates glucose uptake and oxidation in cultured rodent myotubes
title_sort altered amyloid precursor protein processing regulates glucose uptake and oxidation in cultured rodent myotubes
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4079947/
https://www.ncbi.nlm.nih.gov/pubmed/24849570
http://dx.doi.org/10.1007/s00125-014-3269-x
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