An enantioselective covalent inhibitor of BAX confers cytoprotection in vivo

No therapies directly block apoptosis in tissue injury or the many diseases driven by cell loss. The BCL-2 family protein BAX is a central mediator of this pathway and C126 resides within a key regulatory region where physiologic or pharmacologic ligands can activate or inhibit its function. Here, we report enantioselective covalent BAX inhibitors that site-specifically react with C126 and confer cytoprotection across multiple cell types. These ligands constrain BAX conformation and suppress apoptosis in a strictly BAX-dependent manner. Medicinal chemistry optimization yielded covalent BAX inhibitor 3 (CBI-3), an analog with pharmacokinetics suitable for in vivo studies. In a murine model of Fas-induced fulminant hepatic failure, CBI-3 reduced hepatocyte apoptosis and preserved liver histology and survival. CBI-3 also conferred cytoprotection of motor neurons derived from human induced pluripotent stem cells of healthy and amyotrophic lateral sclerosis donors. These findings establish covalent BAX inhibition as a therapeutic strategy to directly block pathologic cell death. An enantioselective covalent inhibitor was developed that restrains BAX, protecting mouse liver and human motor neurons from injury and establishing covalent BAX inhibition as a promising strategy to block pathological cell death.

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Publication Details

Journal
Nature Chemical Biology
Published
2026-08-28
DOI
https://doi.org/10.1038/s41589-026-02297-9
Citations
1
Primary Topic
Cell death mechanisms and regulation
Type
article
Field-Weighted Citation Impact
3.02

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article

An enantioselective covalent inhibitor of BAX confers cytoprotection in vivo

Matthew W. McHenry, Loren D. Walensky, Maria F. Pazyra‐Murphy, Michael D. Cameron et al.
1 citations
Nature Chemical Biology
Cell death mechanisms and regulation
3.02
article

An enantioselective covalent inhibitor of BAX confers cytoprotection in vivo

Matthew W. McHenry, Loren D. Walensky, Maria F. Pazyra‐Murphy, Michael D. Cameron, Benjamin F. Cravatt, Lee L. Rubin, Gregory H. Bird, Mary Rose Branch, Thomas E. Wales, Bruno Melillo, Evert Njomen, Steven P. Gygi, Rosalind A. Segal, Christina M. Camara, Peiwen Shi, Marina Godes, Bethany Tesar, Ka Yang
article en
1 citations

Abstract

No therapies directly block apoptosis in tissue injury or the many diseases driven by cell loss. The BCL-2 family protein BAX is a central mediator of this pathway and C126 resides within a key regulatory region where physiologic or pharmacologic ligands can activate or inhibit its function. Here, we report enantioselective covalent BAX inhibitors that site-specifically react with C126 and confer cytoprotection across multiple cell types. These ligands constrain BAX conformation and suppress apoptosis in a strictly BAX-dependent manner. Medicinal chemistry optimization yielded covalent BAX inhibitor 3 (CBI-3), an analog with pharmacokinetics suitable for in vivo studies. In a murine model of Fas-induced fulminant hepatic failure, CBI-3 reduced hepatocyte apoptosis and preserved liver histology and survival. CBI-3 also conferred cytoprotection of motor neurons derived from human induced pluripotent stem cells of healthy and amyotrophic lateral sclerosis donors. These findings establish covalent BAX inhibition as a therapeutic strategy to directly block pathologic cell death. An enantioselective covalent inhibitor was developed that restrains BAX, protecting mouse liver and human motor neurons from injury and establishing covalent BAX inhibition as a promising strategy to block pathological cell death.

Nature Chemical Biology
Northeastern University (US), Harvard University (US), Scripps Institution of Oceanography (US), Dana-Farber Cancer Institute (US), Dana-Farber/Harvard Cancer Center (US), Scripps (United States) (US), The Herbert Wertheim UF Scripps Institute for Biomedical Innovation & Technology
Dana-Farber/Harvard Cancer Center, National Institutes of Health, National Cancer Institute
Good health and well-being
Openalex Percentile: Top 7%
Cell death mechanisms and regulation
3.02
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