4.8 Article

Lysine acetylation restricts mutant IDH2 activity to optimize transformation in AML cells

Journal

MOLECULAR CELL
Volume 81, Issue 18, Pages 3833-+

Publisher

CELL PRESS
DOI: 10.1016/j.molcel.2021.06.027

Keywords

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Funding

  1. NIH [CA140515, CA183594, CA174786, R35197594, CA173636]
  2. Memorial Sloan Kettering Cancer Center (MSKCC) Support Grant/Core Grant [P30 CA008748, CA169937]
  3. Medical Scientist Training Program, University of Chicago
  4. CDMRP [CA140515, 793843] Funding Source: Federal RePORTER

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The study revealed that mutant IDH2 in AML cells commonly has K413 acetylation, which negatively regulates its activity by attenuating dimerization and blocking substrate and cofactor binding. K413 acetylation of mitochondrial mIDH2 is achieved through a series of hierarchical phosphorylation events, optimizing the leukemogenic ability of mIDH2 in AML cells.
Mutant isocitrate dehydrogenase (IDH) 1 and 2 play a pathogenic role in cancers, including acute myeloid leukemia (AML), by producing oncometabolite 2-hydroxyglutarate (2-HG). We recently reported that tyrosine phosphorylation activates IDH1 R132H mutant in AML cells. Here, we show that mutant IDH2 (mIDH2) R140Q commonly has K413 acetylation, which negatively regulates mIDH2 activity in human AML cells by attenuating dimerization and blocking binding of substrate (a-ketoglutarate) and cofactor (NADPH). Mechanistically, K413 acetylation of mitochondrial mIDH2 is achieved through a series of hierarchical phosphorylation events mediated by tyrosine kinase FLT3, which phosphorylates mIDH2 to recruit upstream mitochondrial acetyltransferase ACAT1 and simultaneously activates ACAT1 and inhibits upstream mitochondrial deacetylase SIRT3 through tyrosine phosphorylation. Moreover, we found that the intrinsic enzyme activity of mIDH2 is much higher than mIDH1, thus the inhibitory K413 acetylation optimizes leukemogenic ability of mIDH2 in AML cells by both producing sufficient 2-HG for transformation and avoiding cytotoxic accumulation of intracellular 2-HG.

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