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PASK links cellular energy metabolism with a mitotic self-renewal network to establish differentiation competence

Quiescent stem cells are activated in response to a mechanical or chemical injury to their tissue niche. Activated cells rapidly generate a heterogeneous progenitor population that regenerates the damaged tissues. While the transcriptional cadence that generates heterogeneity is known, the metabolic...

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Autores principales: Xiao, Michael, Wu, Chia-Hua, Meek, Graham, Kelly, Brian, Castillo, Dara Buendia, Young, Lyndsay EA, Martire, Sara, Dhungel, Sajina, McCauley, Elizabeth, Saha, Purbita, Dube, Altair L, Gentry, Matthew S, Banaszynski, Laura A, Sun, Ramon C, Kikani, Chintan K
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10162801/
https://www.ncbi.nlm.nih.gov/pubmed/37052079
http://dx.doi.org/10.7554/eLife.81717
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author Xiao, Michael
Wu, Chia-Hua
Meek, Graham
Kelly, Brian
Castillo, Dara Buendia
Young, Lyndsay EA
Martire, Sara
Dhungel, Sajina
McCauley, Elizabeth
Saha, Purbita
Dube, Altair L
Gentry, Matthew S
Banaszynski, Laura A
Sun, Ramon C
Kikani, Chintan K
author_facet Xiao, Michael
Wu, Chia-Hua
Meek, Graham
Kelly, Brian
Castillo, Dara Buendia
Young, Lyndsay EA
Martire, Sara
Dhungel, Sajina
McCauley, Elizabeth
Saha, Purbita
Dube, Altair L
Gentry, Matthew S
Banaszynski, Laura A
Sun, Ramon C
Kikani, Chintan K
author_sort Xiao, Michael
collection PubMed
description Quiescent stem cells are activated in response to a mechanical or chemical injury to their tissue niche. Activated cells rapidly generate a heterogeneous progenitor population that regenerates the damaged tissues. While the transcriptional cadence that generates heterogeneity is known, the metabolic pathways influencing the transcriptional machinery to establish a heterogeneous progenitor population remains unclear. Here, we describe a novel pathway downstream of mitochondrial glutamine metabolism that confers stem cell heterogeneity and establishes differentiation competence by countering post-mitotic self-renewal machinery. We discovered that mitochondrial glutamine metabolism induces CBP/EP300-dependent acetylation of stem cell-specific kinase, PAS domain-containing kinase (PASK), resulting in its release from cytoplasmic granules and subsequent nuclear migration. In the nucleus, PASK catalytically outcompetes mitotic WDR5-anaphase-promoting complex/cyclosome (APC/C) interaction resulting in the loss of post-mitotic Pax7 expression and exit from self-renewal. In concordance with these findings, genetic or pharmacological inhibition of PASK or glutamine metabolism upregulated Pax7 expression, reduced stem cell heterogeneity, and blocked myogenesis in vitro and muscle regeneration in mice. These results explain a mechanism whereby stem cells co-opt the proliferative functions of glutamine metabolism to generate transcriptional heterogeneity and establish differentiation competence by countering the mitotic self-renewal network via nuclear PASK.
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spelling pubmed-101628012023-05-06 PASK links cellular energy metabolism with a mitotic self-renewal network to establish differentiation competence Xiao, Michael Wu, Chia-Hua Meek, Graham Kelly, Brian Castillo, Dara Buendia Young, Lyndsay EA Martire, Sara Dhungel, Sajina McCauley, Elizabeth Saha, Purbita Dube, Altair L Gentry, Matthew S Banaszynski, Laura A Sun, Ramon C Kikani, Chintan K eLife Cell Biology Quiescent stem cells are activated in response to a mechanical or chemical injury to their tissue niche. Activated cells rapidly generate a heterogeneous progenitor population that regenerates the damaged tissues. While the transcriptional cadence that generates heterogeneity is known, the metabolic pathways influencing the transcriptional machinery to establish a heterogeneous progenitor population remains unclear. Here, we describe a novel pathway downstream of mitochondrial glutamine metabolism that confers stem cell heterogeneity and establishes differentiation competence by countering post-mitotic self-renewal machinery. We discovered that mitochondrial glutamine metabolism induces CBP/EP300-dependent acetylation of stem cell-specific kinase, PAS domain-containing kinase (PASK), resulting in its release from cytoplasmic granules and subsequent nuclear migration. In the nucleus, PASK catalytically outcompetes mitotic WDR5-anaphase-promoting complex/cyclosome (APC/C) interaction resulting in the loss of post-mitotic Pax7 expression and exit from self-renewal. In concordance with these findings, genetic or pharmacological inhibition of PASK or glutamine metabolism upregulated Pax7 expression, reduced stem cell heterogeneity, and blocked myogenesis in vitro and muscle regeneration in mice. These results explain a mechanism whereby stem cells co-opt the proliferative functions of glutamine metabolism to generate transcriptional heterogeneity and establish differentiation competence by countering the mitotic self-renewal network via nuclear PASK. eLife Sciences Publications, Ltd 2023-04-13 /pmc/articles/PMC10162801/ /pubmed/37052079 http://dx.doi.org/10.7554/eLife.81717 Text en © 2023, Xiao, Wu, Meek et al https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Cell Biology
Xiao, Michael
Wu, Chia-Hua
Meek, Graham
Kelly, Brian
Castillo, Dara Buendia
Young, Lyndsay EA
Martire, Sara
Dhungel, Sajina
McCauley, Elizabeth
Saha, Purbita
Dube, Altair L
Gentry, Matthew S
Banaszynski, Laura A
Sun, Ramon C
Kikani, Chintan K
PASK links cellular energy metabolism with a mitotic self-renewal network to establish differentiation competence
title PASK links cellular energy metabolism with a mitotic self-renewal network to establish differentiation competence
title_full PASK links cellular energy metabolism with a mitotic self-renewal network to establish differentiation competence
title_fullStr PASK links cellular energy metabolism with a mitotic self-renewal network to establish differentiation competence
title_full_unstemmed PASK links cellular energy metabolism with a mitotic self-renewal network to establish differentiation competence
title_short PASK links cellular energy metabolism with a mitotic self-renewal network to establish differentiation competence
title_sort pask links cellular energy metabolism with a mitotic self-renewal network to establish differentiation competence
topic Cell Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10162801/
https://www.ncbi.nlm.nih.gov/pubmed/37052079
http://dx.doi.org/10.7554/eLife.81717
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