Hypoxia promotes isocitrate dehydrogenase-dependent carboxylation of α-ketoglutarate to citrate to support cell growth and viability.

TitleHypoxia promotes isocitrate dehydrogenase-dependent carboxylation of α-ketoglutarate to citrate to support cell growth and viability.
Publication TypeJournal Article
Year of Publication2011
AuthorsWise DR, Ward PS, Shay JES, Cross JR, Gruber JJ, Sachdeva UM, Platt JM, DeMatteo RG, M Simon C, Thompson CB
JournalProc Natl Acad Sci U S A
Volume108
Issue49
Pagination19611-6
Date Published2011 Dec 06
ISSN1091-6490
KeywordsCarboxylic Acids, Cell Hypoxia, Cell Line, Tumor, Cell Proliferation, Cell Survival, Citrates, Citric Acid Cycle, Gas Chromatography-Mass Spectrometry, Glucose, Glutamine, Humans, Hypoxia-Inducible Factor 1, Immunoblotting, Isocitrate Dehydrogenase, Ketoglutaric Acids, Neoplasms, Oxidation-Reduction, RNA Interference
Abstract

Citrate is a critical metabolite required to support both mitochondrial bioenergetics and cytosolic macromolecular synthesis. When cells proliferate under normoxic conditions, glucose provides the acetyl-CoA that condenses with oxaloacetate to support citrate production. Tricarboxylic acid (TCA) cycle anaplerosis is maintained primarily by glutamine. Here we report that some hypoxic cells are able to maintain cell proliferation despite a profound reduction in glucose-dependent citrate production. In these hypoxic cells, glutamine becomes a major source of citrate. Glutamine-derived α-ketoglutarate is reductively carboxylated by the NADPH-linked mitochondrial isocitrate dehydrogenase (IDH2) to form isocitrate, which can then be isomerized to citrate. The increased IDH2-dependent carboxylation of glutamine-derived α-ketoglutarate in hypoxia is associated with a concomitant increased synthesis of 2-hydroxyglutarate (2HG) in cells with wild-type IDH1 and IDH2. When either starved of glutamine or rendered IDH2-deficient by RNAi, hypoxic cells are unable to proliferate. The reductive carboxylation of glutamine is part of the metabolic reprogramming associated with hypoxia-inducible factor 1 (HIF1), as constitutive activation of HIF1 recapitulates the preferential reductive metabolism of glutamine-derived α-ketoglutarate even in normoxic conditions. These data support a role for glutamine carboxylation in maintaining citrate synthesis and cell growth under hypoxic conditions.

DOI10.1073/pnas.1117773108
Alternate JournalProc Natl Acad Sci U S A
PubMed ID22106302
PubMed Central IDPMC3241793
Grant ListP01 CA104838 / CA / NCI NIH HHS / United States
R01 CA105463 / CA / NCI NIH HHS / United States
/ HHMI / Howard Hughes Medical Institute / United States