Rewiring of glutamine metabolism Is a bioenergetic adaptation of human cells with mitochondrial DNA mutations Journal Article


Authors: Chen, Q.; Kirk, K.; Shurubor, Y. I.; Zhao, D.; Arreguin, A. J.; Shahi, I.; Valsecchi, F.; Primiano, G.; Calder, E. L.; Carelli, V.; Denton, T. T.; Beal, M. F.; Gross, S. S.; Manfredi, G.; D'Aurelio, M.
Article Title: Rewiring of glutamine metabolism Is a bioenergetic adaptation of human cells with mitochondrial DNA mutations
Abstract: Using molecular, biochemical, and untargeted stable isotope tracing approaches, we identify a previously unappreciated glutamine-derived α-ketoglutarate (αKG) energy-generating anaplerotic flux to be critical in mitochondrial DNA (mtDNA) mutant cells that harbor human disease-associated oxidative phosphorylation defects. Stimulating this flux with αKG supplementation enables the survival of diverse mtDNA mutant cells under otherwise lethal obligatory oxidative conditions. Strikingly, we demonstrate that when residual mitochondrial respiration in mtDNA mutant cells exceeds 45% of control levels, αKG oxidative flux prevails over reductive carboxylation. Furthermore, in a mouse model of mitochondrial myopathy, we show that increased oxidative αKG flux in muscle arises from enhanced alanine synthesis and release into blood, concomitant with accelerated amino acid catabolism from protein breakdown. Importantly, in this mouse model of mitochondriopathy, muscle amino acid imbalance is normalized by αKG supplementation. Taken together, our findings provide a rationale for αKG supplementation as a therapeutic strategy for mitochondrial myopathies. Chen et al. show that patient cells with mtDNA mutations and a mouse model of mitochondrial myopathy have compensatory glutamine-derived anaplerotic flux that provides αKG to the TCA cycle to enable mutant cell survival. The metabolic fate of αKG (oxidative versus reductive) depends on the severity of OXPHOS impairment. © 2018 Elsevier Inc.
Keywords: controlled study; gene mutation; human cell; nonhuman; mouse; metabolism; animal experiment; animal model; glutamate; mitochondria; bioenergy; glutamine; skeletal muscle; mitochondrial dna; supplementation; myopathy; mouse model; mitochondrial respiration; 2 oxoglutaric acid; mitochondrial diseases; amino acid metabolism; human; priority journal; article; mitochondrial myopathy; anaplerosis; oxphos dysfunction; α-ketoglutarate; 143b cell line
Journal Title: Cell Metabolism
Volume: 27
Issue: 5
ISSN: 1550-4131
Publisher: Elsevier Inc.  
Date Published: 2018-05-01
Start Page: 1007
End Page: 1025.e5
Language: English
DOI: 10.1016/j.cmet.2018.03.002
PROVIDER: scopus
PMCID: PMC5932217
PUBMED: 29657030
DOI/URL:
Notes: Article -- Export Date: 1 June 2018 -- Source: Scopus
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  1. Elizabeth L Calder
    10 Calder