Inhibition of oligomeric BAX by an anti-apoptotic dimer.

Newman, Catherine E; Gygi, Micah A; Alimohamadi, Haleh; DeAngelo, Thomas M; Camara, Christina M; Mintseris, Julian; Yu, Ezra; Harvey, Edward P et al. · Cell · 2025

basic_science · Level V

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Abstract

BAX is a pro-apoptotic BCL-2 protein that resides in the cytosol as a monomer until triggered by cellular stress to form an oligomer that permeabilizes mitochondria and induces apoptosis. The paradigm for apoptotic blockade involves heterodimeric interactions between pro- and anti-apoptotic monomers. Here, we find that full-length BCL-w forms a distinctive, symmetric dimer (BCL-w<sub>D</sub>) that dissociates oligomeric BAX (BAX<sub>O</sub>), inhibits mitochondrial translocation, promotes retrotranslocation, blocks membrane-porating activity, and influences apoptosis induction of cells. Structure-function analyses revealed discrete conformational changes upon BCL-w dimerization and reciprocal structural impacts upon BCL-w<sub>D</sub> and BAX<sub>O</sub> interaction. Small-angle X-ray scattering (SAXS) analysis demonstrated that BAX<sub>O</sub> disrupts membranes by inducing negative Gaussian curvature, which is reversed by positive Gaussian curvature exerted by BCL-w<sub>D</sub>. Systematic truncation and mutagenesis dissected the core features of BCL-w<sub>D</sub> activity-dimerization, BAX<sub>O</sub> engagement, and membrane interaction. Our studies reveal a downstream layer of apoptotic control mediated by protein and membrane interactions of higher-order BCL-2 family multimers.

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