Mitochondrial Protein Lipoylation and the 2-Oxoglutarate Dehydrogenase Complex Controls HIF1α Stability in Aerobic Conditions

0303 health sciences Proline Physiology Protein Stability Lipoylation Homozygote Cell Biology Hydroxylation Hypoxia-Inducible Factor 1, alpha Subunit Article Aerobiosis Cell Line Glutarates Mitochondrial Proteins 03 medical and health sciences Sulfurtransferases Humans Ketoglutarate Dehydrogenase Complex Genetic Testing Molecular Biology Germ-Line Mutation HeLa Cells
DOI: 10.1016/j.cmet.2016.09.015 Publication Date: 2016-10-27T16:16:10Z
ABSTRACT
Hypoxia-inducible transcription factors (HIFs) control adaptation to low oxygen environments by activating genes involved in metabolism, angiogenesis, and redox homeostasis. The finding that HIFs are also regulated by small molecule metabolites highlights the need to understand the complexity of their cellular regulation. Here we use a forward genetic screen in near-haploid human cells to identify genes that stabilize HIFs under aerobic conditions. We identify two mitochondrial genes, oxoglutarate dehydrogenase (OGDH) and lipoic acid synthase (LIAS), which when mutated stabilize HIF1α in a non-hydroxylated form. Disruption of OGDH complex activity in OGDH or LIAS mutants promotes L-2-hydroxyglutarate formation, which inhibits the activity of the HIFα prolyl hydroxylases (PHDs) and TET 2-oxoglutarate dependent dioxygenases. We also find that PHD activity is decreased in patients with homozygous germline mutations in lipoic acid synthesis, leading to HIF1 activation. Thus, mutations affecting OGDHC activity may have broad implications for epigenetic regulation and tumorigenesis.
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