Metabolic perturbations sensitize triple-negative breast cancers to apoptosis induced by BH3 mimetics

细胞凋亡 癌症研究 三阴性乳腺癌 化学 乳腺癌 生物 细胞生物学 程序性细胞死亡 癌症 医学 内科学 生物化学
作者
Veerle W. Daniëls,Jason J. Zoeller,Nick van Gastel,Kelley E. McQueeney,Salma Parvin,Danielle S. Potter,Geoffrey Fell,Vinícius Guimarães Ferreira,Binyam Yilma,Rajat Gupta,Johan Spetz,Patrick Bhola,Jennifer E. Endress,Isaac S. Harris,Emanuel Carrilho,Kristopher A. Sarosiek,David T. Scadden,Joan S. Brugge,Anthony Letai
出处
期刊:Science Signaling [American Association for the Advancement of Science]
卷期号:14 (686) 被引量:29
标识
DOI:10.1126/scisignal.abc7405
摘要

Cancer cells have differential metabolic dependencies compared to their nonmalignant counterparts. However, few metabolism-targeting compounds have been successful in clinical trials. Here, we investigated the metabolic vulnerabilities of triple-negative breast cancer (TNBC), particularly those metabolic perturbations that increased mitochondrial apoptotic priming and sensitivity to BH3 mimetics (drugs that antagonize antiapoptotic proteins). We used high-throughput dynamic BH3 profiling (HT-DBP) to screen a library of metabolism-perturbing small molecules, which revealed inhibitors of the enzyme nicotinamide phosphoribosyltransferase (NAMPT) as top candidates. In some TNBC cells but not in nonmalignant cells, NAMPT inhibitors increased overall apoptotic priming and induced dependencies on specific antiapoptotic BCL-2 family members. Treatment of TNBC cells with NAMPT inhibitors sensitized them to subsequent treatment with BH3 mimetics. The combination of a NAMPT inhibitor (FK866) and an MCL-1 antagonist (S63845) reduced tumor growth in a TNBC patient-derived xenograft model in vivo. We found that NAMPT inhibition reduced NAD+ concentrations below a critical threshold that resulted in depletion of adenine, which was the metabolic trigger that primed TNBC cells for apoptosis. These findings demonstrate a close interaction between metabolic and mitochondrial apoptotic signaling pathways and reveal that exploitation of a tumor-specific metabolic vulnerability can sensitize some TNBC to BH3 mimetics.
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