Cargando…

PDHA1 gene knockout in prostate cancer cells results in metabolic reprogramming towards greater glutamine dependence

Alternative pathways of metabolism endowed cancer cells with metabolic stress. Inhibiting the related compensatory pathways might achieve synergistic anticancer results. This study demonstrated that pyruvate dehydrogenase E1α gene knockout (PDHA1 KO) resulted in alterations in tumor cell metabolism...

Descripción completa

Detalles Bibliográficos
Autores principales: Li, Yaqing, Li, Xiaoran, Li, Xiaoli, Zhong, Yali, Ji, Yasai, Yu, Dandan, Zhang, Mingzhi, Wen, Jian-Guo, Zhang, Hongquan, Goscinski, Mariusz Adam, Nesland, Jahn M., Suo, Zhenhe
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals LLC 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5288225/
https://www.ncbi.nlm.nih.gov/pubmed/27462778
http://dx.doi.org/10.18632/oncotarget.10782
_version_ 1782504291994435584
author Li, Yaqing
Li, Xiaoran
Li, Xiaoli
Zhong, Yali
Ji, Yasai
Yu, Dandan
Zhang, Mingzhi
Wen, Jian-Guo
Zhang, Hongquan
Goscinski, Mariusz Adam
Nesland, Jahn M.
Suo, Zhenhe
author_facet Li, Yaqing
Li, Xiaoran
Li, Xiaoli
Zhong, Yali
Ji, Yasai
Yu, Dandan
Zhang, Mingzhi
Wen, Jian-Guo
Zhang, Hongquan
Goscinski, Mariusz Adam
Nesland, Jahn M.
Suo, Zhenhe
author_sort Li, Yaqing
collection PubMed
description Alternative pathways of metabolism endowed cancer cells with metabolic stress. Inhibiting the related compensatory pathways might achieve synergistic anticancer results. This study demonstrated that pyruvate dehydrogenase E1α gene knockout (PDHA1 KO) resulted in alterations in tumor cell metabolism by rendering the cells with increased expression of glutaminase1 (GLS1) and glutamate dehydrogenase1 (GLUD1), leading to an increase in glutamine-dependent cell survival. Deprivation of glutamine induced cell growth inhibition, increased reactive oxygen species and decreased ATP production. Pharmacological blockade of the glutaminolysis pathway resulted in massive tumor cells apoptosis and dysfunction of ROS scavenge in the LNCaP PDHA1 KO cells. Further examination of the key glutaminolysis enzymes in human prostate cancer samples also revealed that higher levels of GLS1 and GLUD1 expression were significantly associated with aggressive clinicopathological features and poor clinical outcome. These insights supply evidence that glutaminolysis plays a compensatory role for cell survival upon alternative energy metabolism and targeting the glutamine anaplerosis of energy metabolism via GLS1 and GLUD1 in cancer cells may offer a potential novel therapeutic strategy.
format Online
Article
Text
id pubmed-5288225
institution National Center for Biotechnology Information
language English
publishDate 2016
publisher Impact Journals LLC
record_format MEDLINE/PubMed
spelling pubmed-52882252017-02-07 PDHA1 gene knockout in prostate cancer cells results in metabolic reprogramming towards greater glutamine dependence Li, Yaqing Li, Xiaoran Li, Xiaoli Zhong, Yali Ji, Yasai Yu, Dandan Zhang, Mingzhi Wen, Jian-Guo Zhang, Hongquan Goscinski, Mariusz Adam Nesland, Jahn M. Suo, Zhenhe Oncotarget Research Paper Alternative pathways of metabolism endowed cancer cells with metabolic stress. Inhibiting the related compensatory pathways might achieve synergistic anticancer results. This study demonstrated that pyruvate dehydrogenase E1α gene knockout (PDHA1 KO) resulted in alterations in tumor cell metabolism by rendering the cells with increased expression of glutaminase1 (GLS1) and glutamate dehydrogenase1 (GLUD1), leading to an increase in glutamine-dependent cell survival. Deprivation of glutamine induced cell growth inhibition, increased reactive oxygen species and decreased ATP production. Pharmacological blockade of the glutaminolysis pathway resulted in massive tumor cells apoptosis and dysfunction of ROS scavenge in the LNCaP PDHA1 KO cells. Further examination of the key glutaminolysis enzymes in human prostate cancer samples also revealed that higher levels of GLS1 and GLUD1 expression were significantly associated with aggressive clinicopathological features and poor clinical outcome. These insights supply evidence that glutaminolysis plays a compensatory role for cell survival upon alternative energy metabolism and targeting the glutamine anaplerosis of energy metabolism via GLS1 and GLUD1 in cancer cells may offer a potential novel therapeutic strategy. Impact Journals LLC 2016-07-22 /pmc/articles/PMC5288225/ /pubmed/27462778 http://dx.doi.org/10.18632/oncotarget.10782 Text en Copyright: © 2016 Li 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
Li, Yaqing
Li, Xiaoran
Li, Xiaoli
Zhong, Yali
Ji, Yasai
Yu, Dandan
Zhang, Mingzhi
Wen, Jian-Guo
Zhang, Hongquan
Goscinski, Mariusz Adam
Nesland, Jahn M.
Suo, Zhenhe
PDHA1 gene knockout in prostate cancer cells results in metabolic reprogramming towards greater glutamine dependence
title PDHA1 gene knockout in prostate cancer cells results in metabolic reprogramming towards greater glutamine dependence
title_full PDHA1 gene knockout in prostate cancer cells results in metabolic reprogramming towards greater glutamine dependence
title_fullStr PDHA1 gene knockout in prostate cancer cells results in metabolic reprogramming towards greater glutamine dependence
title_full_unstemmed PDHA1 gene knockout in prostate cancer cells results in metabolic reprogramming towards greater glutamine dependence
title_short PDHA1 gene knockout in prostate cancer cells results in metabolic reprogramming towards greater glutamine dependence
title_sort pdha1 gene knockout in prostate cancer cells results in metabolic reprogramming towards greater glutamine dependence
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5288225/
https://www.ncbi.nlm.nih.gov/pubmed/27462778
http://dx.doi.org/10.18632/oncotarget.10782
work_keys_str_mv AT liyaqing pdha1geneknockoutinprostatecancercellsresultsinmetabolicreprogrammingtowardsgreaterglutaminedependence
AT lixiaoran pdha1geneknockoutinprostatecancercellsresultsinmetabolicreprogrammingtowardsgreaterglutaminedependence
AT lixiaoli pdha1geneknockoutinprostatecancercellsresultsinmetabolicreprogrammingtowardsgreaterglutaminedependence
AT zhongyali pdha1geneknockoutinprostatecancercellsresultsinmetabolicreprogrammingtowardsgreaterglutaminedependence
AT jiyasai pdha1geneknockoutinprostatecancercellsresultsinmetabolicreprogrammingtowardsgreaterglutaminedependence
AT yudandan pdha1geneknockoutinprostatecancercellsresultsinmetabolicreprogrammingtowardsgreaterglutaminedependence
AT zhangmingzhi pdha1geneknockoutinprostatecancercellsresultsinmetabolicreprogrammingtowardsgreaterglutaminedependence
AT wenjianguo pdha1geneknockoutinprostatecancercellsresultsinmetabolicreprogrammingtowardsgreaterglutaminedependence
AT zhanghongquan pdha1geneknockoutinprostatecancercellsresultsinmetabolicreprogrammingtowardsgreaterglutaminedependence
AT goscinskimariuszadam pdha1geneknockoutinprostatecancercellsresultsinmetabolicreprogrammingtowardsgreaterglutaminedependence
AT neslandjahnm pdha1geneknockoutinprostatecancercellsresultsinmetabolicreprogrammingtowardsgreaterglutaminedependence
AT suozhenhe pdha1geneknockoutinprostatecancercellsresultsinmetabolicreprogrammingtowardsgreaterglutaminedependence