Cargando…

Menin and Menin-Associated Proteins Coregulate Cancer Energy Metabolism

SIMPLE SUMMARY: Maintaining the energy stability is critical for cell surviving and adapting in a vagary environment. Glycolysis and mitochondrial oxidative phosphorylation (OXPHOS) are two major energy production pathways in cells. Here we demonstrated that menin regulates the expression of OXPHOS...

Descripción completa

Detalles Bibliográficos
Autores principales: Chou, Chih-Wei, Tan, Xi, Hung, Chia-Nung, Lieberman, Brandon, Chen, Meizhen, Kusi, Meena, Mitsuya, Kohzoh, Lin, Chun-Lin, Morita, Masahiro, Liu, Zhijie, Chen, Chun-Liang, Huang, Tim Hui-Ming
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7564175/
https://www.ncbi.nlm.nih.gov/pubmed/32971831
http://dx.doi.org/10.3390/cancers12092715
_version_ 1783595652926668800
author Chou, Chih-Wei
Tan, Xi
Hung, Chia-Nung
Lieberman, Brandon
Chen, Meizhen
Kusi, Meena
Mitsuya, Kohzoh
Lin, Chun-Lin
Morita, Masahiro
Liu, Zhijie
Chen, Chun-Liang
Huang, Tim Hui-Ming
author_facet Chou, Chih-Wei
Tan, Xi
Hung, Chia-Nung
Lieberman, Brandon
Chen, Meizhen
Kusi, Meena
Mitsuya, Kohzoh
Lin, Chun-Lin
Morita, Masahiro
Liu, Zhijie
Chen, Chun-Liang
Huang, Tim Hui-Ming
author_sort Chou, Chih-Wei
collection PubMed
description SIMPLE SUMMARY: Maintaining the energy stability is critical for cell surviving and adapting in a vagary environment. Glycolysis and mitochondrial oxidative phosphorylation (OXPHOS) are two major energy production pathways in cells. Here we demonstrated that menin regulates the expression of OXPHOS and glycolytic genes, and this regulation can further be modified by a group of menin-associated proteins (MAPs) including KMT2A, MED12, WAPL, and GATA3. Downregulation of menin and MAP genes altered the proportion of glycolysis and OXPHOS for energy generation, and we found a counteracting function of menin and MAPs when the shRNA knockdown cells are exposed to metabolic stress. Menin and MAPs may serve as transcriptional sensors for balancing the preference between glycolysis and OXPHOS. This coordinated regulation is crucial for cell adaption to stressful microenvironments using different pathways for energy production. ABSTRACT: The interplay between glycolysis and mitochondrial oxidative phosphorylation (OXPHOS) is central to maintain energy homeostasis. It remains to be determined whether there is a mechanism governing metabolic fluxes based on substrate availability in microenvironments. Here we show that menin is a key transcription factor regulating the expression of OXPHOS and glycolytic genes in cancer cells and primary tumors with poor prognosis. A group of menin-associated proteins (MAPs), including KMT2A, MED12, WAPL, and GATA3, is found to restrain menin’s full function in this transcription regulation. shRNA knockdowns of menin and MAPs result in reduced ATP production with proportional alterations of cellular energy generated through glycolysis and OXPHOS. When shRNA knockdown cells are exposed to metabolic stress, the dual functionality can clearly be distinguished among these metabolic regulators. A MAP can negatively counteract the regulatory mode of menin for OXPHOS while the same protein positively influences glycolysis. A close-proximity interaction between menin and MAPs allows transcriptional regulation for metabolic adjustment. This coordinate regulation by menin and MAPs is necessary for cells to rapidly adapt to fluctuating microenvironments and to maintain essential metabolic functions.
format Online
Article
Text
id pubmed-7564175
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-75641752020-10-26 Menin and Menin-Associated Proteins Coregulate Cancer Energy Metabolism Chou, Chih-Wei Tan, Xi Hung, Chia-Nung Lieberman, Brandon Chen, Meizhen Kusi, Meena Mitsuya, Kohzoh Lin, Chun-Lin Morita, Masahiro Liu, Zhijie Chen, Chun-Liang Huang, Tim Hui-Ming Cancers (Basel) Article SIMPLE SUMMARY: Maintaining the energy stability is critical for cell surviving and adapting in a vagary environment. Glycolysis and mitochondrial oxidative phosphorylation (OXPHOS) are two major energy production pathways in cells. Here we demonstrated that menin regulates the expression of OXPHOS and glycolytic genes, and this regulation can further be modified by a group of menin-associated proteins (MAPs) including KMT2A, MED12, WAPL, and GATA3. Downregulation of menin and MAP genes altered the proportion of glycolysis and OXPHOS for energy generation, and we found a counteracting function of menin and MAPs when the shRNA knockdown cells are exposed to metabolic stress. Menin and MAPs may serve as transcriptional sensors for balancing the preference between glycolysis and OXPHOS. This coordinated regulation is crucial for cell adaption to stressful microenvironments using different pathways for energy production. ABSTRACT: The interplay between glycolysis and mitochondrial oxidative phosphorylation (OXPHOS) is central to maintain energy homeostasis. It remains to be determined whether there is a mechanism governing metabolic fluxes based on substrate availability in microenvironments. Here we show that menin is a key transcription factor regulating the expression of OXPHOS and glycolytic genes in cancer cells and primary tumors with poor prognosis. A group of menin-associated proteins (MAPs), including KMT2A, MED12, WAPL, and GATA3, is found to restrain menin’s full function in this transcription regulation. shRNA knockdowns of menin and MAPs result in reduced ATP production with proportional alterations of cellular energy generated through glycolysis and OXPHOS. When shRNA knockdown cells are exposed to metabolic stress, the dual functionality can clearly be distinguished among these metabolic regulators. A MAP can negatively counteract the regulatory mode of menin for OXPHOS while the same protein positively influences glycolysis. A close-proximity interaction between menin and MAPs allows transcriptional regulation for metabolic adjustment. This coordinate regulation by menin and MAPs is necessary for cells to rapidly adapt to fluctuating microenvironments and to maintain essential metabolic functions. MDPI 2020-09-22 /pmc/articles/PMC7564175/ /pubmed/32971831 http://dx.doi.org/10.3390/cancers12092715 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Chou, Chih-Wei
Tan, Xi
Hung, Chia-Nung
Lieberman, Brandon
Chen, Meizhen
Kusi, Meena
Mitsuya, Kohzoh
Lin, Chun-Lin
Morita, Masahiro
Liu, Zhijie
Chen, Chun-Liang
Huang, Tim Hui-Ming
Menin and Menin-Associated Proteins Coregulate Cancer Energy Metabolism
title Menin and Menin-Associated Proteins Coregulate Cancer Energy Metabolism
title_full Menin and Menin-Associated Proteins Coregulate Cancer Energy Metabolism
title_fullStr Menin and Menin-Associated Proteins Coregulate Cancer Energy Metabolism
title_full_unstemmed Menin and Menin-Associated Proteins Coregulate Cancer Energy Metabolism
title_short Menin and Menin-Associated Proteins Coregulate Cancer Energy Metabolism
title_sort menin and menin-associated proteins coregulate cancer energy metabolism
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7564175/
https://www.ncbi.nlm.nih.gov/pubmed/32971831
http://dx.doi.org/10.3390/cancers12092715
work_keys_str_mv AT chouchihwei meninandmeninassociatedproteinscoregulatecancerenergymetabolism
AT tanxi meninandmeninassociatedproteinscoregulatecancerenergymetabolism
AT hungchianung meninandmeninassociatedproteinscoregulatecancerenergymetabolism
AT liebermanbrandon meninandmeninassociatedproteinscoregulatecancerenergymetabolism
AT chenmeizhen meninandmeninassociatedproteinscoregulatecancerenergymetabolism
AT kusimeena meninandmeninassociatedproteinscoregulatecancerenergymetabolism
AT mitsuyakohzoh meninandmeninassociatedproteinscoregulatecancerenergymetabolism
AT linchunlin meninandmeninassociatedproteinscoregulatecancerenergymetabolism
AT moritamasahiro meninandmeninassociatedproteinscoregulatecancerenergymetabolism
AT liuzhijie meninandmeninassociatedproteinscoregulatecancerenergymetabolism
AT chenchunliang meninandmeninassociatedproteinscoregulatecancerenergymetabolism
AT huangtimhuiming meninandmeninassociatedproteinscoregulatecancerenergymetabolism