Chemical modulation of cytosolic BAX homodimer potentiates BAX activation and apoptosis Journal Article


Authors: Gitego, N.; Agianian, B.; Mak, O. W.; Vasantha Kumar, M. V.; Cheng, E. H.; Gavathiotis, E.
Article Title: Chemical modulation of cytosolic BAX homodimer potentiates BAX activation and apoptosis
Abstract: The BCL-2 family protein BAX is a major regulator of physiological and pathological cell death. BAX predominantly resides in the cytosol in a quiescent state and upon stress, it undergoes conformational activation and mitochondrial translocation leading to mitochondrial outer membrane permeabilization, a critical event in apoptosis execution. Previous studies reported two inactive conformations of cytosolic BAX, a monomer and a dimer, however, it remains unclear how they regulate BAX. Here we show that, surprisingly, cancer cell lines express cytosolic inactive BAX dimers and/or monomers. Expression of inactive dimers, results in reduced BAX activation, translocation and apoptosis upon pro-apoptotic drug treatments. Using the inactive BAX dimer structure and a pharmacophore-based drug screen, we identify a small-molecule modulator, BDM19 that binds and activates cytosolic BAX dimers and prompts cells to apoptosis either alone or in combination with BCL-2/BCL-XL inhibitor Navitoclax. Our findings underscore the role of the cytosolic inactive BAX dimer in resistance to apoptosis and demonstrate a strategy to potentiate BAX-mediated apoptosis. © 2023, The Author(s).
Keywords: antineoplastic agents; antineoplastic agent; metabolism; protein bcl 2; apoptosis; protein; bcl-x protein; proto-oncogene proteins c-bcl-2; biological transport; cytosol; protein bax; drug; membrane; transport at the cellular level; bcl-2-associated x protein; protein bcl x; cell component; cancer
Journal Title: Nature Communications
Volume: 14
ISSN: 2041-1723
Publisher: Nature Publishing Group  
Date Published: 2023-12-16
Start Page: 8381
Language: English
DOI: 10.1038/s41467-023-44084-3
PUBMED: 38104127
PROVIDER: scopus
PMCID: PMC10725471
DOI/URL:
Notes: Article -- Source: Scopus
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  1. Emily H Cheng
    78 Cheng