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Mitochondrial NDUFS3 regulates the ROS-mediated onset of metabolic switch in transformed cells

Aerobic glycolysis in transformed cells is an unique metabolic phenotype characterized by a hyperactivated glycolytic pathway even in the presence of oxygen. It is not clear if the onset of aerobic glycolysis is regulated by mitochondrial dysfunction and, if so, what the metabolic windows of opportu...

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Autores principales: Suhane, Sonal, Kanzaki, Hirotaka, Arumugaswami, Vaithilingaraja, Murali, Ramachandran, Ramanujan, V. Krishnan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Company of Biologists 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3603411/
https://www.ncbi.nlm.nih.gov/pubmed/23519235
http://dx.doi.org/10.1242/bio.20133244
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author Suhane, Sonal
Kanzaki, Hirotaka
Arumugaswami, Vaithilingaraja
Murali, Ramachandran
Ramanujan, V. Krishnan
author_facet Suhane, Sonal
Kanzaki, Hirotaka
Arumugaswami, Vaithilingaraja
Murali, Ramachandran
Ramanujan, V. Krishnan
author_sort Suhane, Sonal
collection PubMed
description Aerobic glycolysis in transformed cells is an unique metabolic phenotype characterized by a hyperactivated glycolytic pathway even in the presence of oxygen. It is not clear if the onset of aerobic glycolysis is regulated by mitochondrial dysfunction and, if so, what the metabolic windows of opportunity available to control this metabolic switch (mitochondrial to glycolytic) landscape are in transformed cells. Here we report a genetically-defined model system based on the gene-silencing of a mitochondrial complex I subunit, NDUFS3, where we demonstrate the onset of metabolic switch in isogenic human embryonic kidney cells by differential expression of NDUFS3. By means of extensive metabolic characterization, we demonstrate that NDUFS3 gene silencing systematically introduces mitochondrial dysfunction thereby leading to the onset of aerobic glycolysis in a manner dependent on NDUFS3 protein levels. Furthermore, we show that the sustained imbalance in free radical dynamics is a necessary condition to sustain the observed metabolic switch in cell lines with the most severe NDUFS3 suppression. Together, our data reveal a novel role for mitochondrial complex I subunit NDUFS3 in regulating the degree of mitochondrial dysfunction in living cells, thereby setting a “metabolic threshold” for the observation of aerobic glycolysis phenotype within the confines of mitochondrial dysfunction.
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spelling pubmed-36034112013-03-21 Mitochondrial NDUFS3 regulates the ROS-mediated onset of metabolic switch in transformed cells Suhane, Sonal Kanzaki, Hirotaka Arumugaswami, Vaithilingaraja Murali, Ramachandran Ramanujan, V. Krishnan Biol Open Research Article Aerobic glycolysis in transformed cells is an unique metabolic phenotype characterized by a hyperactivated glycolytic pathway even in the presence of oxygen. It is not clear if the onset of aerobic glycolysis is regulated by mitochondrial dysfunction and, if so, what the metabolic windows of opportunity available to control this metabolic switch (mitochondrial to glycolytic) landscape are in transformed cells. Here we report a genetically-defined model system based on the gene-silencing of a mitochondrial complex I subunit, NDUFS3, where we demonstrate the onset of metabolic switch in isogenic human embryonic kidney cells by differential expression of NDUFS3. By means of extensive metabolic characterization, we demonstrate that NDUFS3 gene silencing systematically introduces mitochondrial dysfunction thereby leading to the onset of aerobic glycolysis in a manner dependent on NDUFS3 protein levels. Furthermore, we show that the sustained imbalance in free radical dynamics is a necessary condition to sustain the observed metabolic switch in cell lines with the most severe NDUFS3 suppression. Together, our data reveal a novel role for mitochondrial complex I subunit NDUFS3 in regulating the degree of mitochondrial dysfunction in living cells, thereby setting a “metabolic threshold” for the observation of aerobic glycolysis phenotype within the confines of mitochondrial dysfunction. The Company of Biologists 2013-01-17 /pmc/articles/PMC3603411/ /pubmed/23519235 http://dx.doi.org/10.1242/bio.20133244 Text en © 2013. Published by The Company of Biologists Ltd http://creativecommons.org/licenses/by-nc-sa/3.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial Share Alike License (http://creativecommons.org/licenses/by-nc-sa/3.0/).
spellingShingle Research Article
Suhane, Sonal
Kanzaki, Hirotaka
Arumugaswami, Vaithilingaraja
Murali, Ramachandran
Ramanujan, V. Krishnan
Mitochondrial NDUFS3 regulates the ROS-mediated onset of metabolic switch in transformed cells
title Mitochondrial NDUFS3 regulates the ROS-mediated onset of metabolic switch in transformed cells
title_full Mitochondrial NDUFS3 regulates the ROS-mediated onset of metabolic switch in transformed cells
title_fullStr Mitochondrial NDUFS3 regulates the ROS-mediated onset of metabolic switch in transformed cells
title_full_unstemmed Mitochondrial NDUFS3 regulates the ROS-mediated onset of metabolic switch in transformed cells
title_short Mitochondrial NDUFS3 regulates the ROS-mediated onset of metabolic switch in transformed cells
title_sort mitochondrial ndufs3 regulates the ros-mediated onset of metabolic switch in transformed cells
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3603411/
https://www.ncbi.nlm.nih.gov/pubmed/23519235
http://dx.doi.org/10.1242/bio.20133244
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