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Glucose metabolism determines resistance of cancer cells to bioenergetic crisis after cytochrome-c release

Many anticancer drugs activate caspases via the mitochondrial apoptosis pathway. Activation of this pathway triggers a concomitant bioenergetic crisis caused by the release of cytochrome-c (cyt-c). Cancer cells are able to evade these processes by altering metabolic and caspase activation pathways....

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Autores principales: Huber, Heinrich J, Dussmann, Heiko, Kilbride, Seán M, Rehm, Markus, Prehn, Jochen H M
Formato: Texto
Lenguaje:English
Publicado: European Molecular Biology Organization 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3094064/
https://www.ncbi.nlm.nih.gov/pubmed/21364572
http://dx.doi.org/10.1038/msb.2011.2
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author Huber, Heinrich J
Dussmann, Heiko
Kilbride, Seán M
Rehm, Markus
Prehn, Jochen H M
author_facet Huber, Heinrich J
Dussmann, Heiko
Kilbride, Seán M
Rehm, Markus
Prehn, Jochen H M
author_sort Huber, Heinrich J
collection PubMed
description Many anticancer drugs activate caspases via the mitochondrial apoptosis pathway. Activation of this pathway triggers a concomitant bioenergetic crisis caused by the release of cytochrome-c (cyt-c). Cancer cells are able to evade these processes by altering metabolic and caspase activation pathways. In this study, we provide the first integrated system study of mitochondrial bioenergetics and apoptosis signalling and examine the role of mitochondrial cyt-c release in these events. In accordance with single-cell experiments, our model showed that loss of cyt-c decreased mitochondrial respiration by 95% and depolarised mitochondrial membrane potential ΔΨ(m) from −142 to −88 mV, with active caspase-3 potentiating this decrease. ATP synthase was reversed under such conditions, consuming ATP and stabilising ΔΨ(m). However, the direction and level of ATP synthase activity showed significant heterogeneity in individual cancer cells, which the model explained by variations in (i) accessible cyt-c after release and (ii) the cell's glycolytic capacity. Our results provide a quantitative and mechanistic explanation for the protective role of enhanced glucose utilisation for cancer cells to avert the otherwise lethal bioenergetic crisis associated with apoptosis initiation.
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spelling pubmed-30940642011-05-18 Glucose metabolism determines resistance of cancer cells to bioenergetic crisis after cytochrome-c release Huber, Heinrich J Dussmann, Heiko Kilbride, Seán M Rehm, Markus Prehn, Jochen H M Mol Syst Biol Article Many anticancer drugs activate caspases via the mitochondrial apoptosis pathway. Activation of this pathway triggers a concomitant bioenergetic crisis caused by the release of cytochrome-c (cyt-c). Cancer cells are able to evade these processes by altering metabolic and caspase activation pathways. In this study, we provide the first integrated system study of mitochondrial bioenergetics and apoptosis signalling and examine the role of mitochondrial cyt-c release in these events. In accordance with single-cell experiments, our model showed that loss of cyt-c decreased mitochondrial respiration by 95% and depolarised mitochondrial membrane potential ΔΨ(m) from −142 to −88 mV, with active caspase-3 potentiating this decrease. ATP synthase was reversed under such conditions, consuming ATP and stabilising ΔΨ(m). However, the direction and level of ATP synthase activity showed significant heterogeneity in individual cancer cells, which the model explained by variations in (i) accessible cyt-c after release and (ii) the cell's glycolytic capacity. Our results provide a quantitative and mechanistic explanation for the protective role of enhanced glucose utilisation for cancer cells to avert the otherwise lethal bioenergetic crisis associated with apoptosis initiation. European Molecular Biology Organization 2011-03-01 /pmc/articles/PMC3094064/ /pubmed/21364572 http://dx.doi.org/10.1038/msb.2011.2 Text en Copyright © 2011, EMBO and Macmillan Publishers Limited https://creativecommons.org/licenses/by-nc-sa/3.0/This is an open-access article distributed under the terms of the Creative Commons Attribution Noncommercial Share Alike 3.0 Unported License, which allows readers to alter, transform, or build upon the article and then distribute the resulting work under the same or similar license to this one. The work must be attributed back to the original author and commercial use is not permitted without specific permission.
spellingShingle Article
Huber, Heinrich J
Dussmann, Heiko
Kilbride, Seán M
Rehm, Markus
Prehn, Jochen H M
Glucose metabolism determines resistance of cancer cells to bioenergetic crisis after cytochrome-c release
title Glucose metabolism determines resistance of cancer cells to bioenergetic crisis after cytochrome-c release
title_full Glucose metabolism determines resistance of cancer cells to bioenergetic crisis after cytochrome-c release
title_fullStr Glucose metabolism determines resistance of cancer cells to bioenergetic crisis after cytochrome-c release
title_full_unstemmed Glucose metabolism determines resistance of cancer cells to bioenergetic crisis after cytochrome-c release
title_short Glucose metabolism determines resistance of cancer cells to bioenergetic crisis after cytochrome-c release
title_sort glucose metabolism determines resistance of cancer cells to bioenergetic crisis after cytochrome-c release
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3094064/
https://www.ncbi.nlm.nih.gov/pubmed/21364572
http://dx.doi.org/10.1038/msb.2011.2
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