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

Author:

Xiao Michael12,Wu Chia-Hua1ORCID,Meek Graham1,Kelly Brian1,Castillo Dara Buendia1ORCID,Young Lyndsay EA3,Martire Sara4,Dhungel Sajina1,McCauley Elizabeth1,Saha Purbita4,Dube Altair L4,Gentry Matthew S3ORCID,Banaszynski Laura A4,Sun Ramon C35ORCID,Kikani Chintan K1ORCID

Affiliation:

1. Department of Biology, College of Arts and Sciences, University of Kentucky, Thomas Hunt Morgan Building

2. Weill Cornell/Rockefeller/Sloan Kettering Tri-Institutional MD-PhD Program

3. Molecular and Cellular Biochemistry, College of Medicine, University of Kentucky

4. Cecil H. and Ida Green Center for Reproductive Biology Sciences, Children’s Medical Center Research Institute, Department of Obstetrics & Gynecology, Hamon Center for Regenerative Science and Medicine at the University of Texas Southwestern Medical Center

5. Department of Neuroscience, College of Medicine, University of Kentucky

Abstract

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.

Funder

National Institute of Arthritis and Musculoskeletal and Skin Diseases

National Cancer Institute

National Institute of General Medical Sciences

American Cancer Society

Eunice Kennedy Shriver National Institute of Child Health and Human Development

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

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