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Data from Targeting the Sodium–Potassium Pump as a Therapeutic Strategy in Acute Myeloid Leukemia

Posted on 2024-10-15 - 07:20
Abstract

Tissue-specific differences in the expression of paralog genes, which are not essential in most cell types due to the buffering effect of the partner pair, can make for highly selective gene dependencies. To identify selective paralogous targets for acute myeloid leukemia (AML), we integrated the Cancer Dependency Map with numerous datasets characterizing protein–protein interactions, paralog relationships, and gene expression in cancer models. In this study, we identified ATP1B3 as a context-specific, paralog-related dependency in AML. ATP1B3, the β-subunit of the sodium–potassium pump (Na/K-ATP pump), interacts with the α-subunit ATP1A1 to form an essential complex for maintaining cellular homeostasis and membrane potential in all eukaryotic cells. When ATP1B3’s paralog ATP1B1 is poorly expressed, elimination of ATP1B3 leads to the destabilization of the Na/K-ATP pump. ATP1B1 expression is regulated through epigenetic silencing in hematopoietic lineage cells through histone and DNA methylation in the promoter region. Loss of ATP1B3 in AML cells induced cell death in vitro and reduced leukemia burden in vivo, which could be rescued by stabilizing ATP1A1 through overexpression of ATP1B1. Thus, ATP1B3 is a potential therapeutic target for AML and other hematologic malignancies with low expression of ATP1B1.

Significance: ATP1B3 is a lethal selective paralog dependency in acute myeloid leukemia that can be eliminated to destabilize the sodium–potassium pump, inducing cell death.

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FUNDING

Deutsche Forschungsgemeinschaft (DFG)

Helen Gurley Brown Foundation

The Selig Family Fund for Pediatric Cancer Research

National Cancer Institute (NCI)

United States Department of Health and Human Services

St. Baldrick’s Foundation (SBF)

Rally Foundation (Rally Foundation, Inc.)

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AUTHORS (12)

  • Constanze Schneider
    Hermes Spaink
    Gabriela Alexe
    Neekesh V. Dharia
    Ashleigh Meyer
    Lucy A. Merickel
    Delan Khalid
    Sebastian Scheich
    Björn Häupl
    Louis M. Staudt
    Thomas Oellerich
    Kimberly Stegmaier
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