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CAPER Is Vital for Energy and Redox Homeostasis by Integrating Glucose-Induced Mitochondrial Functions via ERR-α-Gabpa and Stress-Induced Adaptive Responses via NF-κB-cMYC

Ever since we developed mitochondria to generate ATP, eukaryotes required intimate mito-nuclear communication. In addition, since reactive oxygen species are a cost of mitochondrial oxidative phosphorylation, this demands safeguards as protection from these harmful byproducts. Here we identified a c...

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Autores principales: Kang, Yun Kyoung, Putluri, Nagireddy, Maity, Suman, Tsimelzon, Anna, Ilkayeva, Olga, Mo, Qianxing, Lonard, David, Michailidis, George, Sreekumar, Arun, Newgard, Christopher B., Wang, Meng, Tsai, Sophia Y., Tsai, Ming-Jer, O'Malley, Bert W.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4382186/
https://www.ncbi.nlm.nih.gov/pubmed/25830341
http://dx.doi.org/10.1371/journal.pgen.1005116
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author Kang, Yun Kyoung
Putluri, Nagireddy
Maity, Suman
Tsimelzon, Anna
Ilkayeva, Olga
Mo, Qianxing
Lonard, David
Michailidis, George
Sreekumar, Arun
Newgard, Christopher B.
Wang, Meng
Tsai, Sophia Y.
Tsai, Ming-Jer
O'Malley, Bert W.
author_facet Kang, Yun Kyoung
Putluri, Nagireddy
Maity, Suman
Tsimelzon, Anna
Ilkayeva, Olga
Mo, Qianxing
Lonard, David
Michailidis, George
Sreekumar, Arun
Newgard, Christopher B.
Wang, Meng
Tsai, Sophia Y.
Tsai, Ming-Jer
O'Malley, Bert W.
author_sort Kang, Yun Kyoung
collection PubMed
description Ever since we developed mitochondria to generate ATP, eukaryotes required intimate mito-nuclear communication. In addition, since reactive oxygen species are a cost of mitochondrial oxidative phosphorylation, this demands safeguards as protection from these harmful byproducts. Here we identified a critical transcriptional integrator which eukaryotes share to orchestrate both nutrient-induced mitochondrial energy metabolism and stress-induced nuclear responses, thereby maintaining carbon-nitrogen balance, and preserving life span and reproductive capacity. Inhibition of nutrient-induced expression of CAPER arrests nutrient-dependent cell proliferation and ATP generation and induces autophagy-mediated vacuolization. Nutrient signaling to CAPER induces mitochondrial transcription and glucose-dependent mitochondrial respiration via coactivation of nuclear receptor ERR-α-mediated Gabpa transcription. CAPER is also a coactivator for NF-κB that directly regulates c-Myc to coordinate nuclear transcriptome responses to mitochondrial stress. Finally, CAPER is responsible for anaplerotic carbon flux into TCA cycles from glycolysis, amino acids and fatty acids in order to maintain cellular energy metabolism to counter mitochondrial stress. Collectively, our studies reveal CAPER as an evolutionarily conserved ‘master’ regulatory mechanism by which eukaryotic cells control vital homeostasis for both ATP and antioxidants via CAPER-dependent coordinated control of nuclear and mitochondrial transcriptomic programs and their metabolisms. These CAPER dependent bioenergetic programs are highly conserved, as we demonstrated that they are essential to preserving life span and reproductive capacity in human cells—and even in C. elegans.
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spelling pubmed-43821862015-04-09 CAPER Is Vital for Energy and Redox Homeostasis by Integrating Glucose-Induced Mitochondrial Functions via ERR-α-Gabpa and Stress-Induced Adaptive Responses via NF-κB-cMYC Kang, Yun Kyoung Putluri, Nagireddy Maity, Suman Tsimelzon, Anna Ilkayeva, Olga Mo, Qianxing Lonard, David Michailidis, George Sreekumar, Arun Newgard, Christopher B. Wang, Meng Tsai, Sophia Y. Tsai, Ming-Jer O'Malley, Bert W. PLoS Genet Research Article Ever since we developed mitochondria to generate ATP, eukaryotes required intimate mito-nuclear communication. In addition, since reactive oxygen species are a cost of mitochondrial oxidative phosphorylation, this demands safeguards as protection from these harmful byproducts. Here we identified a critical transcriptional integrator which eukaryotes share to orchestrate both nutrient-induced mitochondrial energy metabolism and stress-induced nuclear responses, thereby maintaining carbon-nitrogen balance, and preserving life span and reproductive capacity. Inhibition of nutrient-induced expression of CAPER arrests nutrient-dependent cell proliferation and ATP generation and induces autophagy-mediated vacuolization. Nutrient signaling to CAPER induces mitochondrial transcription and glucose-dependent mitochondrial respiration via coactivation of nuclear receptor ERR-α-mediated Gabpa transcription. CAPER is also a coactivator for NF-κB that directly regulates c-Myc to coordinate nuclear transcriptome responses to mitochondrial stress. Finally, CAPER is responsible for anaplerotic carbon flux into TCA cycles from glycolysis, amino acids and fatty acids in order to maintain cellular energy metabolism to counter mitochondrial stress. Collectively, our studies reveal CAPER as an evolutionarily conserved ‘master’ regulatory mechanism by which eukaryotic cells control vital homeostasis for both ATP and antioxidants via CAPER-dependent coordinated control of nuclear and mitochondrial transcriptomic programs and their metabolisms. These CAPER dependent bioenergetic programs are highly conserved, as we demonstrated that they are essential to preserving life span and reproductive capacity in human cells—and even in C. elegans. Public Library of Science 2015-04-01 /pmc/articles/PMC4382186/ /pubmed/25830341 http://dx.doi.org/10.1371/journal.pgen.1005116 Text en © 2015 Kang 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
Kang, Yun Kyoung
Putluri, Nagireddy
Maity, Suman
Tsimelzon, Anna
Ilkayeva, Olga
Mo, Qianxing
Lonard, David
Michailidis, George
Sreekumar, Arun
Newgard, Christopher B.
Wang, Meng
Tsai, Sophia Y.
Tsai, Ming-Jer
O'Malley, Bert W.
CAPER Is Vital for Energy and Redox Homeostasis by Integrating Glucose-Induced Mitochondrial Functions via ERR-α-Gabpa and Stress-Induced Adaptive Responses via NF-κB-cMYC
title CAPER Is Vital for Energy and Redox Homeostasis by Integrating Glucose-Induced Mitochondrial Functions via ERR-α-Gabpa and Stress-Induced Adaptive Responses via NF-κB-cMYC
title_full CAPER Is Vital for Energy and Redox Homeostasis by Integrating Glucose-Induced Mitochondrial Functions via ERR-α-Gabpa and Stress-Induced Adaptive Responses via NF-κB-cMYC
title_fullStr CAPER Is Vital for Energy and Redox Homeostasis by Integrating Glucose-Induced Mitochondrial Functions via ERR-α-Gabpa and Stress-Induced Adaptive Responses via NF-κB-cMYC
title_full_unstemmed CAPER Is Vital for Energy and Redox Homeostasis by Integrating Glucose-Induced Mitochondrial Functions via ERR-α-Gabpa and Stress-Induced Adaptive Responses via NF-κB-cMYC
title_short CAPER Is Vital for Energy and Redox Homeostasis by Integrating Glucose-Induced Mitochondrial Functions via ERR-α-Gabpa and Stress-Induced Adaptive Responses via NF-κB-cMYC
title_sort caper is vital for energy and redox homeostasis by integrating glucose-induced mitochondrial functions via err-α-gabpa and stress-induced adaptive responses via nf-κb-cmyc
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4382186/
https://www.ncbi.nlm.nih.gov/pubmed/25830341
http://dx.doi.org/10.1371/journal.pgen.1005116
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