pipette
ENEnglish

Mitochondrial NADP(H)–dependent de novo dTMP biosynthesis counteracts the cytotoxicity of PARP inhibitors

Qing Li, Tong Shu, Chen Liu, Min Zheng, Yuanpei Li, Lei Zhang, Fan Gao, Wenbin Lu, Huiwen Zhang, Pingping Liu, Xiaoniu He, Hong Zheng, Wen Liu, Jing Ye, Zhenyu Yin, Xianming Deng, Chensong Zhang, Canhua Huang, Han Wook You

Revista con revisión por paresAfirmaciones fuertes, leer con cuidadoUso en el mundo real

En palabras de los autores

PARP inhibitors (PARPis), known to elicit mitochondrial protection in nononcological diseases by elevating the cellular NAD + pool, exhibit potent cytotoxicity in selected human cancers. The role of mitochondrial metabolism in PARPi-mediated antitumor therapy remains unexplored. Here, we propose a causal link between mitochondrial NAD + metabolism and PARPi responsiveness. In PARPi-non-responsive tumor cells, PARP inhibition specifically expands mitochondrial NADP(H) [mito-NADP(H)] pool, thereby facilitating de novo mitochondrial dTMP (mito-dTMP) biosynthesis and maintaining mitochondrial dTTP (mito-dTTP) pool to prevent uracil misincorporation into mitochondrial DNA (mtDNA), regardless of homologous recombination (HR) status. Mechanistically, loss of PTPN1 ADPRylation by PARPi abolishes its phosphatase activity toward STAT3, yielding enhanced STAT3 phosphorylation and the subsequent transactivation of FoxO1. FoxO1 modulates transcriptomic signature governing mitochondrial NADPH fluxes to de novo mito-dTMP generation. Our results uncover a fundamental vulnerability that can be leveraged by cotargeting STAT3 and PARP to trigger mitochondrial dysfunction.

Resultado principalEl resumen no menciona limitaciones.

Apareció: sábado, 26 de septiembre. Proceedings of the National Academy of Sciences. Revista con revisión por pares.

DOI: 10.1073/pnas.2607452123