Tajinder Ubhi, Olga Zaslaver, Andrew T. Quaile, Dennis Plenker, Pinjiang Cao, Nhu-An Pham, Angéla Békési, Gun-Ho Jang, Grainne M. O’Kane, Faiyaz Notta, Jason Moffat, Julie M. Wilson, Steven Gallinger, Beáta G. Vértessy, David A. Tuveson, Hannes L. Röst, Grant W. Brown
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引用次数: 0
Abstract
Gemcitabine is a potent inhibitor of DNA replication and is a mainstay therapeutic for diverse cancers, particularly pancreatic ductal adenocarcinoma (PDAC). However, most tumors remain refractory to gemcitabine therapies. Here, to define the cancer cell response to gemcitabine, we performed genome-scale CRISPR–Cas9 chemical–genetic screens in PDAC cells and found selective loss of cell fitness upon disruption of the cytidine deaminases APOBEC3C and APOBEC3D. Following gemcitabine treatment, APOBEC3C and APOBEC3D promote DNA replication stress resistance and cell survival by deaminating cytidines in the nuclear genome to ensure DNA replication fork restart and repair in PDAC cells. We provide evidence that the chemical–genetic interaction between APOBEC3C or APOBEC3D and gemcitabine is absent in nontransformed cells but is recapitulated across different PDAC cell lines, in PDAC organoids and in PDAC xenografts. Thus, we uncover roles for APOBEC3C and APOBEC3D in DNA replication stress resistance and offer plausible targets for improving gemcitabine-based therapies for PDAC. Ubhi et al. describe the contribution of APOBEC family members A3C and A3D in the gemcitabine resistance mechanism in the context of pancreatic cancer, which is mediated by facilitating the restart of treatment-induced stalled replication forks.
期刊介绍:
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