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Inhibition of mitochondrial complex I reverses NOTCH1-driven metabolic reprogramming in T-cell acute lymphoblastic leukemia.


ABSTRACT: T-cell acute lymphoblastic leukemia (T-ALL) is commonly driven by activating mutations in NOTCH1 that facilitate glutamine oxidation. Here we identify oxidative phosphorylation (OxPhos) as a critical pathway for leukemia cell survival and demonstrate a direct relationship between NOTCH1, elevated OxPhos gene expression, and acquired chemoresistance in pre-leukemic and leukemic models. Disrupting OxPhos with IACS-010759, an inhibitor of mitochondrial complex I, causes potent growth inhibition through induction of metabolic shut-down and redox imbalance in NOTCH1-mutated and less so in NOTCH1-wt T-ALL cells. Mechanistically, inhibition of OxPhos induces a metabolic reprogramming into glutaminolysis. We show that pharmacological blockade of OxPhos combined with inducible knock-down of glutaminase, the key glutamine enzyme, confers synthetic lethality in mice harboring NOTCH1-mutated T-ALL. We leverage on this synthetic lethal interaction to demonstrate that IACS-010759 in combination with chemotherapy containing L-asparaginase, an enzyme that uncovers the glutamine dependency of leukemic cells, causes reduced glutaminolysis and profound tumor reduction in pre-clinical models of human T-ALL. In summary, this metabolic dependency of T-ALL on OxPhos provides a rational therapeutic target.

SUBMITTER: Baran N 

PROVIDER: S-EPMC9120040 | biostudies-literature | 2022 May

REPOSITORIES: biostudies-literature

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Inhibition of mitochondrial complex I reverses NOTCH1-driven metabolic reprogramming in T-cell acute lymphoblastic leukemia.

Baran Natalia N   Lodi Alessia A   Dhungana Yogesh Y   Herbrich Shelley S   Collins Meghan M   Sweeney Shannon S   Pandey Renu R   Skwarska Anna A   Patel Shraddha S   Tremblay Mathieu M   Kuruvilla Vinitha Mary VM   Cavazos Antonio A   Kaplan Mecit M   Warmoes Marc O MO   Veiga Diogo Troggian DT   Furudate Ken K   Rojas-Sutterin Shanti S   Haman Andre A   Gareau Yves Y   Marinier Anne A   Ma Helen H   Harutyunyan Karine K   Daher May M   Garcia Luciana Melo LM   Al-Atrash Gheath G   Piya Sujan S   Ruvolo Vivian V   Yang Wentao W   Shanmugavelandy Sriram Saravanan SS   Feng Ningping N   Gay Jason J   Du Di D   Yang Jun J JJ   Hoff Fieke W FW   Kaminski Marcin M   Tomczak Katarzyna K   Eric Davis R R   Herranz Daniel D   Ferrando Adolfo A   Jabbour Elias J EJ   Emilia Di Francesco M M   Teachey David T DT   Horton Terzah M TM   Kornblau Steven S   Rezvani Katayoun K   Sauvageau Guy G   Gagea Mihai M   Andreeff Michael M   Takahashi Koichi K   Marszalek Joseph R JR   Lorenzi Philip L PL   Yu Jiyang J   Yu Jiyang J   Tiziani Stefano S   Hoang Trang T   Konopleva Marina M  

Nature communications 20220519 1


T-cell acute lymphoblastic leukemia (T-ALL) is commonly driven by activating mutations in NOTCH1 that facilitate glutamine oxidation. Here we identify oxidative phosphorylation (OxPhos) as a critical pathway for leukemia cell survival and demonstrate a direct relationship between NOTCH1, elevated OxPhos gene expression, and acquired chemoresistance in pre-leukemic and leukemic models. Disrupting OxPhos with IACS-010759, an inhibitor of mitochondrial complex I, causes potent growth inhibition thr  ...[more]

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