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H3K9me3 represses G6PD expression to suppress the pentose phosphate pathway and ROS production to promote human mesothelioma growth

The role of glucose-6-phosphate dehydrogenase (G6PD) in human cancer is incompletely understood. In a metabolite screening, we observed that inhibition of H3K9 methylation suppressed aerobic glycolysis and enhances the PPP in human mesothelioma cells. Genome-wide screening identified G6PD as an H3K9...

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Autores principales: Lu, Chunwan, Yang, Dafeng, Klement, John D., Colson, Yolonda L, Oberlies, Nicholas H., Pearce, Cedric J., Colby, Aaron H., Grinstaff, Mark W., Liu, Zhuoqi, Shi, Huidong, Ding, Han-Fei, Liu, Kebin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9058223/
https://www.ncbi.nlm.nih.gov/pubmed/35351997
http://dx.doi.org/10.1038/s41388-022-02283-0
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author Lu, Chunwan
Yang, Dafeng
Klement, John D.
Colson, Yolonda L
Oberlies, Nicholas H.
Pearce, Cedric J.
Colby, Aaron H.
Grinstaff, Mark W.
Liu, Zhuoqi
Shi, Huidong
Ding, Han-Fei
Liu, Kebin
author_facet Lu, Chunwan
Yang, Dafeng
Klement, John D.
Colson, Yolonda L
Oberlies, Nicholas H.
Pearce, Cedric J.
Colby, Aaron H.
Grinstaff, Mark W.
Liu, Zhuoqi
Shi, Huidong
Ding, Han-Fei
Liu, Kebin
author_sort Lu, Chunwan
collection PubMed
description The role of glucose-6-phosphate dehydrogenase (G6PD) in human cancer is incompletely understood. In a metabolite screening, we observed that inhibition of H3K9 methylation suppressed aerobic glycolysis and enhances the PPP in human mesothelioma cells. Genome-wide screening identified G6PD as an H3K9me3 target gene whose expression is correlated with increased tumor cell apoptosis. Inhibition of aerobic glycolysis enzyme LDHA and G6PD had no significant effects on tumor cell survival. Ablation of G6PD had no significant effect on human mesothelioma and colon carcinoma xenograft growth in athymic mice. However, activation of G6PD with the G6PD-selective activator AG1 induced tumor cell death. AG1 increased tumor cell ROS production and the resultant extrinsic and intrinsic death pathway, mitochondrial processes, and unfolded protein response in tumor cells. Consistent with increased tumor cell death in vitro, AG1 suppressed human mesothelioma xenograft growth in a dose-dependent manner in vivo. Furthermore, AG1 treatment significantly increased tumor-bearing mouse survival in an intra-peritoneum xenograft athymic mouse model. Therefore, in human mesothelioma and colon carcinoma, G6PD is not essential for tumor growth. G6PD acts as a metabolic checkpoint to control metabolic flux towards the PPP to promote tumor cell apoptosis, and its expression is repressed by its promotor H3K9me3 deposition.
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spelling pubmed-90582232022-09-30 H3K9me3 represses G6PD expression to suppress the pentose phosphate pathway and ROS production to promote human mesothelioma growth Lu, Chunwan Yang, Dafeng Klement, John D. Colson, Yolonda L Oberlies, Nicholas H. Pearce, Cedric J. Colby, Aaron H. Grinstaff, Mark W. Liu, Zhuoqi Shi, Huidong Ding, Han-Fei Liu, Kebin Oncogene Article The role of glucose-6-phosphate dehydrogenase (G6PD) in human cancer is incompletely understood. In a metabolite screening, we observed that inhibition of H3K9 methylation suppressed aerobic glycolysis and enhances the PPP in human mesothelioma cells. Genome-wide screening identified G6PD as an H3K9me3 target gene whose expression is correlated with increased tumor cell apoptosis. Inhibition of aerobic glycolysis enzyme LDHA and G6PD had no significant effects on tumor cell survival. Ablation of G6PD had no significant effect on human mesothelioma and colon carcinoma xenograft growth in athymic mice. However, activation of G6PD with the G6PD-selective activator AG1 induced tumor cell death. AG1 increased tumor cell ROS production and the resultant extrinsic and intrinsic death pathway, mitochondrial processes, and unfolded protein response in tumor cells. Consistent with increased tumor cell death in vitro, AG1 suppressed human mesothelioma xenograft growth in a dose-dependent manner in vivo. Furthermore, AG1 treatment significantly increased tumor-bearing mouse survival in an intra-peritoneum xenograft athymic mouse model. Therefore, in human mesothelioma and colon carcinoma, G6PD is not essential for tumor growth. G6PD acts as a metabolic checkpoint to control metabolic flux towards the PPP to promote tumor cell apoptosis, and its expression is repressed by its promotor H3K9me3 deposition. 2022-04 2022-03-30 /pmc/articles/PMC9058223/ /pubmed/35351997 http://dx.doi.org/10.1038/s41388-022-02283-0 Text en Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use: https://www.springernature.com/gp/open-research/policies/accepted-manuscript-terms
spellingShingle Article
Lu, Chunwan
Yang, Dafeng
Klement, John D.
Colson, Yolonda L
Oberlies, Nicholas H.
Pearce, Cedric J.
Colby, Aaron H.
Grinstaff, Mark W.
Liu, Zhuoqi
Shi, Huidong
Ding, Han-Fei
Liu, Kebin
H3K9me3 represses G6PD expression to suppress the pentose phosphate pathway and ROS production to promote human mesothelioma growth
title H3K9me3 represses G6PD expression to suppress the pentose phosphate pathway and ROS production to promote human mesothelioma growth
title_full H3K9me3 represses G6PD expression to suppress the pentose phosphate pathway and ROS production to promote human mesothelioma growth
title_fullStr H3K9me3 represses G6PD expression to suppress the pentose phosphate pathway and ROS production to promote human mesothelioma growth
title_full_unstemmed H3K9me3 represses G6PD expression to suppress the pentose phosphate pathway and ROS production to promote human mesothelioma growth
title_short H3K9me3 represses G6PD expression to suppress the pentose phosphate pathway and ROS production to promote human mesothelioma growth
title_sort h3k9me3 represses g6pd expression to suppress the pentose phosphate pathway and ros production to promote human mesothelioma growth
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9058223/
https://www.ncbi.nlm.nih.gov/pubmed/35351997
http://dx.doi.org/10.1038/s41388-022-02283-0
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