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c-Myc and AMPK Control Cellular Energy Levels by Cooperatively Regulating Mitochondrial Structure and Function

The c-Myc (Myc) oncoprotein and AMP-activated protein kinase (AMPK) regulate glycolysis and oxidative phosphorylation (Oxphos) although often for different purposes. Because Myc over-expression depletes ATP with the resultant activation of AMPK, we explored the potential co-dependency of and cross-t...

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Autores principales: Edmunds, Lia R., Sharma, Lokendra, Wang, Huabo, Kang, Audry, d’Souza, Sonia, Lu, Jie, McLaughlin, Michael, Dolezal, James M., Gao, Xiaoli, Weintraub, Susan T., Ding, Ying, Zeng, Xuemei, Yates, Nathan, Prochownik, Edward V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4521957/
https://www.ncbi.nlm.nih.gov/pubmed/26230505
http://dx.doi.org/10.1371/journal.pone.0134049
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author Edmunds, Lia R.
Sharma, Lokendra
Wang, Huabo
Kang, Audry
d’Souza, Sonia
Lu, Jie
McLaughlin, Michael
Dolezal, James M.
Gao, Xiaoli
Weintraub, Susan T.
Ding, Ying
Zeng, Xuemei
Yates, Nathan
Prochownik, Edward V.
author_facet Edmunds, Lia R.
Sharma, Lokendra
Wang, Huabo
Kang, Audry
d’Souza, Sonia
Lu, Jie
McLaughlin, Michael
Dolezal, James M.
Gao, Xiaoli
Weintraub, Susan T.
Ding, Ying
Zeng, Xuemei
Yates, Nathan
Prochownik, Edward V.
author_sort Edmunds, Lia R.
collection PubMed
description The c-Myc (Myc) oncoprotein and AMP-activated protein kinase (AMPK) regulate glycolysis and oxidative phosphorylation (Oxphos) although often for different purposes. Because Myc over-expression depletes ATP with the resultant activation of AMPK, we explored the potential co-dependency of and cross-talk between these proteins by comparing the consequences of acute Myc induction in ampk+/+ (WT) and ampk-/- (KO) murine embryo fibroblasts (MEFs). KO MEFs showed a higher basal rate of glycolysis than WT MEFs and an appropriate increase in response to activation of a Myc-estrogen receptor (MycER) fusion protein. However, KO MEFs had a diminished ability to increase Oxphos, mitochondrial mass and reactive oxygen species in response to MycER activation. Other differences between WT and KO MEFs, either in the basal state or following MycER induction, included abnormalities in electron transport chain function, levels of TCA cycle-related oxidoreductases and cytoplasmic and mitochondrial redox states. Transcriptional profiling of pathways pertinent to glycolysis, Oxphos and mitochondrial structure and function also uncovered significant differences between WT and KO MEFs and their response to MycER activation. Finally, an unbiased mass-spectrometry (MS)-based survey capable of quantifying ~40% of all mitochondrial proteins, showed about 15% of them to be AMPK- and/or Myc-dependent in their steady state. Significant differences in the activities of the rate-limiting enzymes pyruvate kinase and pyruvate dehydrogenase, which dictate pyruvate and acetyl coenzyme A abundance, were also differentially responsive to Myc and AMPK and could account for some of the differences in basal metabolite levels that were also detected by MS. Thus, Myc and AMPK are highly co-dependent and appear to engage in significant cross-talk across numerous pathways which support metabolic and ATP-generating functions.
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spelling pubmed-45219572015-08-06 c-Myc and AMPK Control Cellular Energy Levels by Cooperatively Regulating Mitochondrial Structure and Function Edmunds, Lia R. Sharma, Lokendra Wang, Huabo Kang, Audry d’Souza, Sonia Lu, Jie McLaughlin, Michael Dolezal, James M. Gao, Xiaoli Weintraub, Susan T. Ding, Ying Zeng, Xuemei Yates, Nathan Prochownik, Edward V. PLoS One Research Article The c-Myc (Myc) oncoprotein and AMP-activated protein kinase (AMPK) regulate glycolysis and oxidative phosphorylation (Oxphos) although often for different purposes. Because Myc over-expression depletes ATP with the resultant activation of AMPK, we explored the potential co-dependency of and cross-talk between these proteins by comparing the consequences of acute Myc induction in ampk+/+ (WT) and ampk-/- (KO) murine embryo fibroblasts (MEFs). KO MEFs showed a higher basal rate of glycolysis than WT MEFs and an appropriate increase in response to activation of a Myc-estrogen receptor (MycER) fusion protein. However, KO MEFs had a diminished ability to increase Oxphos, mitochondrial mass and reactive oxygen species in response to MycER activation. Other differences between WT and KO MEFs, either in the basal state or following MycER induction, included abnormalities in electron transport chain function, levels of TCA cycle-related oxidoreductases and cytoplasmic and mitochondrial redox states. Transcriptional profiling of pathways pertinent to glycolysis, Oxphos and mitochondrial structure and function also uncovered significant differences between WT and KO MEFs and their response to MycER activation. Finally, an unbiased mass-spectrometry (MS)-based survey capable of quantifying ~40% of all mitochondrial proteins, showed about 15% of them to be AMPK- and/or Myc-dependent in their steady state. Significant differences in the activities of the rate-limiting enzymes pyruvate kinase and pyruvate dehydrogenase, which dictate pyruvate and acetyl coenzyme A abundance, were also differentially responsive to Myc and AMPK and could account for some of the differences in basal metabolite levels that were also detected by MS. Thus, Myc and AMPK are highly co-dependent and appear to engage in significant cross-talk across numerous pathways which support metabolic and ATP-generating functions. Public Library of Science 2015-07-31 /pmc/articles/PMC4521957/ /pubmed/26230505 http://dx.doi.org/10.1371/journal.pone.0134049 Text en © 2015 Edmunds et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Edmunds, Lia R.
Sharma, Lokendra
Wang, Huabo
Kang, Audry
d’Souza, Sonia
Lu, Jie
McLaughlin, Michael
Dolezal, James M.
Gao, Xiaoli
Weintraub, Susan T.
Ding, Ying
Zeng, Xuemei
Yates, Nathan
Prochownik, Edward V.
c-Myc and AMPK Control Cellular Energy Levels by Cooperatively Regulating Mitochondrial Structure and Function
title c-Myc and AMPK Control Cellular Energy Levels by Cooperatively Regulating Mitochondrial Structure and Function
title_full c-Myc and AMPK Control Cellular Energy Levels by Cooperatively Regulating Mitochondrial Structure and Function
title_fullStr c-Myc and AMPK Control Cellular Energy Levels by Cooperatively Regulating Mitochondrial Structure and Function
title_full_unstemmed c-Myc and AMPK Control Cellular Energy Levels by Cooperatively Regulating Mitochondrial Structure and Function
title_short c-Myc and AMPK Control Cellular Energy Levels by Cooperatively Regulating Mitochondrial Structure and Function
title_sort c-myc and ampk control cellular energy levels by cooperatively regulating mitochondrial structure and function
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4521957/
https://www.ncbi.nlm.nih.gov/pubmed/26230505
http://dx.doi.org/10.1371/journal.pone.0134049
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