Germline mutations in mitochondrial complex I reveal genetic and targetable vulnerability in IDH1-mutant acute myeloid leukaemia.
Mahmoud Adel BassalSaumya E E SamaraweeraKelly LimBrooks A BenardSheree BaileySatinder KaurPaul LeoJohn ToubiaChloe A L Thompson-PeachTran NguyenKyaw Ze Ya MaungDebora A CasolariDiana G IarossiIlaria S PaganiJason PowellStuart M PitsonSiria NateraUte RoessnerIan D LewisAnna L BrownDaniel G TenenNirmal RobinsonDavid M RossRavindra MajetiThomas J GondaDaniel ThomasRichard J J D'AndreaPublished in: Nature communications (2022)
The interaction of germline variation and somatic cancer driver mutations is under-investigated. Here we describe the genomic mitochondrial landscape in adult acute myeloid leukaemia (AML) and show that rare variants affecting the nuclear- and mitochondrially-encoded complex I genes show near-mutual exclusivity with somatic driver mutations affecting isocitrate dehydrogenase 1 (IDH1), but not IDH2 suggesting a unique epistatic relationship. Whereas AML cells with rare complex I variants or mutations in IDH1 or IDH2 all display attenuated mitochondrial respiration, heightened sensitivity to complex I inhibitors including the clinical-grade inhibitor, IACS-010759, is observed only for IDH1-mutant AML. Furthermore, IDH1 mutant blasts that are resistant to the IDH1-mutant inhibitor, ivosidenib, retain sensitivity to complex I inhibition. We propose that the IDH1 mutation limits the flexibility for citrate utilization in the presence of impaired complex I activity to a degree that is not apparent in IDH2 mutant cells, exposing a mutation-specific metabolic vulnerability. This reduced metabolic plasticity explains the epistatic relationship between the germline complex I variants and oncogenic IDH1 mutation underscoring the utility of genomic data in revealing metabolic vulnerabilities with implications for therapy.
Keyphrases
- wild type
- low grade
- copy number
- acute myeloid leukemia
- induced apoptosis
- oxidative stress
- genome wide
- dendritic cells
- high grade
- squamous cell carcinoma
- bone marrow
- stem cells
- liver failure
- dna repair
- magnetic resonance imaging
- machine learning
- cell death
- cell cycle arrest
- allogeneic hematopoietic stem cell transplantation
- intensive care unit
- gene expression
- papillary thyroid
- dna damage
- high resolution
- endoplasmic reticulum stress
- childhood cancer