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Caveolin-1 regulates cancer cell metabolism via scavenging Nrf2 and suppressing MnSOD-driven glycolysis

Aerobic glycolysis is an indispensable component of aggressive cancer cell metabolism. It also distinguishes cancer cells from most healthy cell types in the body. Particularly for this reason, targeting the metabolism to improve treatment outcomes has long been perceived as a potentially valuable s...

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Autores principales: Hart, Peter C., Ratti, Bianca A., Mao, Mao, Ansenberger-Fricano, Kristine, Shajahan-Haq, Ayesha N., Tyner, Angela L., Minshall, Richard D., Bonini, Marcelo G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals LLC 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4808000/
https://www.ncbi.nlm.nih.gov/pubmed/26543228
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author Hart, Peter C.
Ratti, Bianca A.
Mao, Mao
Ansenberger-Fricano, Kristine
Shajahan-Haq, Ayesha N.
Tyner, Angela L.
Minshall, Richard D.
Bonini, Marcelo G.
author_facet Hart, Peter C.
Ratti, Bianca A.
Mao, Mao
Ansenberger-Fricano, Kristine
Shajahan-Haq, Ayesha N.
Tyner, Angela L.
Minshall, Richard D.
Bonini, Marcelo G.
author_sort Hart, Peter C.
collection PubMed
description Aerobic glycolysis is an indispensable component of aggressive cancer cell metabolism. It also distinguishes cancer cells from most healthy cell types in the body. Particularly for this reason, targeting the metabolism to improve treatment outcomes has long been perceived as a potentially valuable strategy. In practice, however, our limited knowledge of why and how metabolic reprogramming occurs has prevented progress towards therapeutic interventions that exploit the metabolic peculiarities of tumors. We recently described that in breast cancer, MnSOD upregulation is both necessary and sufficient to activate glycolysis. Here, we focused on determining the molecular mechanisms of MnSOD upregulation. We found that Caveolin-1 (Cav-1) is a central component of this mechanism due to its suppressive effects of NF-E2-related factor 2 (Nrf2), a transcription factor upstream of MnSOD. In transformed MCF10A(Er/Src) cells, Cav-1 loss preceded the activation of Nrf2 and its induction of MnSOD expression. Consistently, with previous observations, MnSOD expression secondary to Nrf2 activation led to an increase in the glycolytic rate dependent on mtH(2)O(2) production and the activation of AMPK. Moreover, rescue of Cav-1 expression in a breast cancer cell line (MCF7) suppressed Nrf2 and reduced MnSOD expression. Experimental data were reinforced by epidemiologic nested case-control studies showing that Cav-1 and MnSOD are inversely expressed in cases of invasive ductal carcinoma, with low Cav-1 and high MnSOD expression being associated with lower 5-year survival rates and molecular subtypes with poorest prognosis.
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spelling pubmed-48080002016-04-19 Caveolin-1 regulates cancer cell metabolism via scavenging Nrf2 and suppressing MnSOD-driven glycolysis Hart, Peter C. Ratti, Bianca A. Mao, Mao Ansenberger-Fricano, Kristine Shajahan-Haq, Ayesha N. Tyner, Angela L. Minshall, Richard D. Bonini, Marcelo G. Oncotarget Research Paper Aerobic glycolysis is an indispensable component of aggressive cancer cell metabolism. It also distinguishes cancer cells from most healthy cell types in the body. Particularly for this reason, targeting the metabolism to improve treatment outcomes has long been perceived as a potentially valuable strategy. In practice, however, our limited knowledge of why and how metabolic reprogramming occurs has prevented progress towards therapeutic interventions that exploit the metabolic peculiarities of tumors. We recently described that in breast cancer, MnSOD upregulation is both necessary and sufficient to activate glycolysis. Here, we focused on determining the molecular mechanisms of MnSOD upregulation. We found that Caveolin-1 (Cav-1) is a central component of this mechanism due to its suppressive effects of NF-E2-related factor 2 (Nrf2), a transcription factor upstream of MnSOD. In transformed MCF10A(Er/Src) cells, Cav-1 loss preceded the activation of Nrf2 and its induction of MnSOD expression. Consistently, with previous observations, MnSOD expression secondary to Nrf2 activation led to an increase in the glycolytic rate dependent on mtH(2)O(2) production and the activation of AMPK. Moreover, rescue of Cav-1 expression in a breast cancer cell line (MCF7) suppressed Nrf2 and reduced MnSOD expression. Experimental data were reinforced by epidemiologic nested case-control studies showing that Cav-1 and MnSOD are inversely expressed in cases of invasive ductal carcinoma, with low Cav-1 and high MnSOD expression being associated with lower 5-year survival rates and molecular subtypes with poorest prognosis. Impact Journals LLC 2015-10-26 /pmc/articles/PMC4808000/ /pubmed/26543228 Text en Copyright: © 2016 Hart et al. http://creativecommons.org/licenses/by/2.5/ 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 credited.
spellingShingle Research Paper
Hart, Peter C.
Ratti, Bianca A.
Mao, Mao
Ansenberger-Fricano, Kristine
Shajahan-Haq, Ayesha N.
Tyner, Angela L.
Minshall, Richard D.
Bonini, Marcelo G.
Caveolin-1 regulates cancer cell metabolism via scavenging Nrf2 and suppressing MnSOD-driven glycolysis
title Caveolin-1 regulates cancer cell metabolism via scavenging Nrf2 and suppressing MnSOD-driven glycolysis
title_full Caveolin-1 regulates cancer cell metabolism via scavenging Nrf2 and suppressing MnSOD-driven glycolysis
title_fullStr Caveolin-1 regulates cancer cell metabolism via scavenging Nrf2 and suppressing MnSOD-driven glycolysis
title_full_unstemmed Caveolin-1 regulates cancer cell metabolism via scavenging Nrf2 and suppressing MnSOD-driven glycolysis
title_short Caveolin-1 regulates cancer cell metabolism via scavenging Nrf2 and suppressing MnSOD-driven glycolysis
title_sort caveolin-1 regulates cancer cell metabolism via scavenging nrf2 and suppressing mnsod-driven glycolysis
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4808000/
https://www.ncbi.nlm.nih.gov/pubmed/26543228
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