Ets-1 regulates energy metabolism in cancer cells.

Cancer cells predominantly utilize glycolysis for ATP production even in the presence of abundant oxygen, an environment that would normally result in energy production through oxidative phosphorylation. Although the molecular mechanism for this metabolic switch to aerobic glycolysis has not been fu...

Full description

Bibliographic Details
Main Authors: Meghan L Verschoor, Leigh A Wilson, Chris P Verschoor, Gurmit Singh
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2010-10-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC2962648?pdf=render
id doaj-bfbfca80416a4450b4722cbcd769706e
record_format Article
spelling doaj-bfbfca80416a4450b4722cbcd769706e2020-11-25T01:17:14ZengPublic Library of Science (PLoS)PLoS ONE1932-62032010-10-01510e1356510.1371/journal.pone.0013565Ets-1 regulates energy metabolism in cancer cells.Meghan L VerschoorLeigh A WilsonChris P VerschoorGurmit SinghCancer cells predominantly utilize glycolysis for ATP production even in the presence of abundant oxygen, an environment that would normally result in energy production through oxidative phosphorylation. Although the molecular mechanism for this metabolic switch to aerobic glycolysis has not been fully elucidated, it is likely that mitochondrial damage to the electron transport chain and the resulting increased production of reactive oxygen species are significant driving forces. In this study, we have investigated the role of the transcription factor Ets-1 in the regulation of mitochondrial function and metabolism. Ets-1 was over-expressed using a stably-incorporated tetracycline-inducible expression vector in the ovarian cancer cell line 2008, which does not express detectable basal levels of Ets-1 protein. Microarray analysis of the effects of Ets-1 over-expression in these ovarian cancer cells shows that Ets-1 up-regulates key enzymes involved in glycolysis and associated feeder pathways, fatty acid metabolism, and antioxidant defense. In contrast, Ets-1 down-regulates genes involved in the citric acid cycle, electron transport chain, and mitochondrial proteins. At the functional level, we have found that Ets-1 expression is directly correlated with cellular oxygen consumption whereby increased expression causes decreased oxygen consumption. Ets-1 over-expression also caused increased sensitivity to glycolytic inhibitors, as well as growth inhibition in a glucose-depleted culture environment. Collectively our findings demonstrate that Ets-1 is involved in the regulation of cellular metabolism and response to oxidative stress in ovarian cancer cells.http://europepmc.org/articles/PMC2962648?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Meghan L Verschoor
Leigh A Wilson
Chris P Verschoor
Gurmit Singh
spellingShingle Meghan L Verschoor
Leigh A Wilson
Chris P Verschoor
Gurmit Singh
Ets-1 regulates energy metabolism in cancer cells.
PLoS ONE
author_facet Meghan L Verschoor
Leigh A Wilson
Chris P Verschoor
Gurmit Singh
author_sort Meghan L Verschoor
title Ets-1 regulates energy metabolism in cancer cells.
title_short Ets-1 regulates energy metabolism in cancer cells.
title_full Ets-1 regulates energy metabolism in cancer cells.
title_fullStr Ets-1 regulates energy metabolism in cancer cells.
title_full_unstemmed Ets-1 regulates energy metabolism in cancer cells.
title_sort ets-1 regulates energy metabolism in cancer cells.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2010-10-01
description Cancer cells predominantly utilize glycolysis for ATP production even in the presence of abundant oxygen, an environment that would normally result in energy production through oxidative phosphorylation. Although the molecular mechanism for this metabolic switch to aerobic glycolysis has not been fully elucidated, it is likely that mitochondrial damage to the electron transport chain and the resulting increased production of reactive oxygen species are significant driving forces. In this study, we have investigated the role of the transcription factor Ets-1 in the regulation of mitochondrial function and metabolism. Ets-1 was over-expressed using a stably-incorporated tetracycline-inducible expression vector in the ovarian cancer cell line 2008, which does not express detectable basal levels of Ets-1 protein. Microarray analysis of the effects of Ets-1 over-expression in these ovarian cancer cells shows that Ets-1 up-regulates key enzymes involved in glycolysis and associated feeder pathways, fatty acid metabolism, and antioxidant defense. In contrast, Ets-1 down-regulates genes involved in the citric acid cycle, electron transport chain, and mitochondrial proteins. At the functional level, we have found that Ets-1 expression is directly correlated with cellular oxygen consumption whereby increased expression causes decreased oxygen consumption. Ets-1 over-expression also caused increased sensitivity to glycolytic inhibitors, as well as growth inhibition in a glucose-depleted culture environment. Collectively our findings demonstrate that Ets-1 is involved in the regulation of cellular metabolism and response to oxidative stress in ovarian cancer cells.
url http://europepmc.org/articles/PMC2962648?pdf=render
work_keys_str_mv AT meghanlverschoor ets1regulatesenergymetabolismincancercells
AT leighawilson ets1regulatesenergymetabolismincancercells
AT chrispverschoor ets1regulatesenergymetabolismincancercells
AT gurmitsingh ets1regulatesenergymetabolismincancercells
_version_ 1725147171167141888