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Data from Lactate Utilization Enables Metabolic Escape to Confer Resistance to BET Inhibition in Acute Myeloid Leukemia

Posted on 2024-04-01 - 07:23
Abstract

Impairing the BET family coactivator BRD4 with small-molecule inhibitors (BETi) showed encouraging preclinical activity in treating acute myeloid leukemia (AML). However, dose-limiting toxicities and limited clinical activity dampened the enthusiasm for BETi as a single agent. BETi resistance in AML myeloblasts was found to correlate with maintaining mitochondrial respiration, suggesting that identifying the metabolic pathway sustaining mitochondrial integrity could help develop approaches to improve BETi efficacy. Herein, we demonstrated that mitochondria-associated lactate dehydrogenase allows AML myeloblasts to utilize lactate as a metabolic bypass to fuel mitochondrial respiration and maintain cellular viability. Pharmacologically and genetically impairing lactate utilization rendered resistant myeloblasts susceptible to BET inhibition. Low-dose combinations of BETi and oxamate, a lactate dehydrogenase inhibitor, reduced in vivo expansion of BETi-resistant AML in cell line and patient-derived murine models. These results elucidate how AML myeloblasts metabolically adapt to BETi by consuming lactate and demonstrate that combining BETi with inhibitors of lactate utilization may be useful in AML treatment.

Significance:

Lactate utilization allows AML myeloblasts to maintain metabolic integrity and circumvent antileukemic therapy, which supports testing of lactate utilization inhibitors in clinical settings to overcome BET inhibitor resistance in AML.

See related commentary by Boët and Sarry, p. 950

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FUNDING

National Cancer Institute (NCI)

United States Department of Health and Human Services

Division of Diabetes, Endocrinology, and Metabolic Diseases (DEM)

Leukemia and Lymphoma Society (LLS)

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AUTHORS (17)

  • Andrew J. Monteith
    Haley E. Ramsey
    Alexander J. Silver
    Donovan Brown
    Dalton Greenwood
    Brianna N. Smith
    Ashley D. Wise
    Juan Liu
    Sarah D. Olmstead
    Jackson Watke
    Maria P. Arrate
    Agnieszka E. Gorska
    Londa Fuller
    Jason W. Locasale
    Matthew C. Stubbs
    Jeffrey C. Rathmell
    Michael R. Savona
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