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FoxO Transcription Factors Are Critical Regulators of Diabetes-Related Muscle Atrophy

Insulin deficiency and uncontrolled diabetes lead to a catabolic state with decreased muscle strength, contributing to disease-related morbidity. FoxO transcription factors are suppressed by insulin and thus are key mediators of insulin action. To study their role in diabetic muscle wasting, we crea...

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Autores principales: O’Neill, Brian T., Bhardwaj, Gourav, Penniman, Christie M., Krumpoch, Megan T., Suarez Beltran, Pablo A., Klaus, Katherine, Poro, Kennedy, Li, Mengyao, Pan, Hui, Dreyfuss, Jonathan M., Nair, K. Sreekumaran, Kahn, C. Ronald
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Diabetes Association 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6385751/
https://www.ncbi.nlm.nih.gov/pubmed/30523026
http://dx.doi.org/10.2337/db18-0416
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author O’Neill, Brian T.
Bhardwaj, Gourav
Penniman, Christie M.
Krumpoch, Megan T.
Suarez Beltran, Pablo A.
Klaus, Katherine
Poro, Kennedy
Li, Mengyao
Pan, Hui
Dreyfuss, Jonathan M.
Nair, K. Sreekumaran
Kahn, C. Ronald
author_facet O’Neill, Brian T.
Bhardwaj, Gourav
Penniman, Christie M.
Krumpoch, Megan T.
Suarez Beltran, Pablo A.
Klaus, Katherine
Poro, Kennedy
Li, Mengyao
Pan, Hui
Dreyfuss, Jonathan M.
Nair, K. Sreekumaran
Kahn, C. Ronald
author_sort O’Neill, Brian T.
collection PubMed
description Insulin deficiency and uncontrolled diabetes lead to a catabolic state with decreased muscle strength, contributing to disease-related morbidity. FoxO transcription factors are suppressed by insulin and thus are key mediators of insulin action. To study their role in diabetic muscle wasting, we created mice with muscle-specific triple knockout of FoxO1/3/4 and induced diabetes in these M-FoxO-TKO mice with streptozotocin (STZ). Muscle mass and myofiber area were decreased 20–30% in STZ-Diabetes mice due to increased ubiquitin-proteasome degradation and autophagy alterations, characterized by increased LC3-containing vesicles, and elevated levels of phosphorylated ULK1 and LC3-II. Both the muscle loss and markers of increased degradation/autophagy were completely prevented in STZ FoxO-TKO mice. Transcriptomic analyses revealed FoxO-dependent increases in ubiquitin-mediated proteolysis pathways in STZ-Diabetes, including regulation of Fbxo32 (Atrogin1), Trim63 (MuRF1), Bnip3L, and Gabarapl. These same genes were increased 1.4- to 3.3-fold in muscle from humans with type 1 diabetes after short-term insulin deprivation. Thus, FoxO-regulated genes play a rate-limiting role in increased protein degradation and muscle atrophy in insulin-deficient diabetes.
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spelling pubmed-63857512020-03-01 FoxO Transcription Factors Are Critical Regulators of Diabetes-Related Muscle Atrophy O’Neill, Brian T. Bhardwaj, Gourav Penniman, Christie M. Krumpoch, Megan T. Suarez Beltran, Pablo A. Klaus, Katherine Poro, Kennedy Li, Mengyao Pan, Hui Dreyfuss, Jonathan M. Nair, K. Sreekumaran Kahn, C. Ronald Diabetes Signal Transduction Insulin deficiency and uncontrolled diabetes lead to a catabolic state with decreased muscle strength, contributing to disease-related morbidity. FoxO transcription factors are suppressed by insulin and thus are key mediators of insulin action. To study their role in diabetic muscle wasting, we created mice with muscle-specific triple knockout of FoxO1/3/4 and induced diabetes in these M-FoxO-TKO mice with streptozotocin (STZ). Muscle mass and myofiber area were decreased 20–30% in STZ-Diabetes mice due to increased ubiquitin-proteasome degradation and autophagy alterations, characterized by increased LC3-containing vesicles, and elevated levels of phosphorylated ULK1 and LC3-II. Both the muscle loss and markers of increased degradation/autophagy were completely prevented in STZ FoxO-TKO mice. Transcriptomic analyses revealed FoxO-dependent increases in ubiquitin-mediated proteolysis pathways in STZ-Diabetes, including regulation of Fbxo32 (Atrogin1), Trim63 (MuRF1), Bnip3L, and Gabarapl. These same genes were increased 1.4- to 3.3-fold in muscle from humans with type 1 diabetes after short-term insulin deprivation. Thus, FoxO-regulated genes play a rate-limiting role in increased protein degradation and muscle atrophy in insulin-deficient diabetes. American Diabetes Association 2019-03 2018-12-06 /pmc/articles/PMC6385751/ /pubmed/30523026 http://dx.doi.org/10.2337/db18-0416 Text en © 2018 by the American Diabetes Association. http://www.diabetesjournals.org/content/licenseReaders may use this article as long as the work is properly cited, the use is educational and not for profit, and the work is not altered. More information is available at http://www.diabetesjournals.org/content/license.
spellingShingle Signal Transduction
O’Neill, Brian T.
Bhardwaj, Gourav
Penniman, Christie M.
Krumpoch, Megan T.
Suarez Beltran, Pablo A.
Klaus, Katherine
Poro, Kennedy
Li, Mengyao
Pan, Hui
Dreyfuss, Jonathan M.
Nair, K. Sreekumaran
Kahn, C. Ronald
FoxO Transcription Factors Are Critical Regulators of Diabetes-Related Muscle Atrophy
title FoxO Transcription Factors Are Critical Regulators of Diabetes-Related Muscle Atrophy
title_full FoxO Transcription Factors Are Critical Regulators of Diabetes-Related Muscle Atrophy
title_fullStr FoxO Transcription Factors Are Critical Regulators of Diabetes-Related Muscle Atrophy
title_full_unstemmed FoxO Transcription Factors Are Critical Regulators of Diabetes-Related Muscle Atrophy
title_short FoxO Transcription Factors Are Critical Regulators of Diabetes-Related Muscle Atrophy
title_sort foxo transcription factors are critical regulators of diabetes-related muscle atrophy
topic Signal Transduction
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6385751/
https://www.ncbi.nlm.nih.gov/pubmed/30523026
http://dx.doi.org/10.2337/db18-0416
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