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XPF mediates 3' flap processing for FEN1-independent Okazaki fragment maturation

Li, K.; Yang, F.; Wang, Y.; Shi, G.; Yan, Y.; Lei, Y.; Wang, Y.; Sun, H.; Zhou, M.; Zheng, L.; Shen, B.

2025-11-01 cell biology
10.1101/2025.10.24.684453 bioRxiv
Show abstract

Okazaki fragment maturation (OFM), the process that removes RNA-DNA primers, is a major source of DNA replication stress and mutations. It involves Pol{delta}-mediated DNA strand displacement synthesis that produces 5 flaps, FEN1-mediated 5 flap cleavage, and LIG1-catalyzed nick ligation. Recently, we discovered that under stress conditions, yeast cells convert 5 flaps into 3 flaps, which are degraded by 3 flap nucleases to produce ligatable DNA nicks. However, little is known about this stress-induced, 3 flap-based OFM in human cells. Here, we report that 3 flaps frequently form in various human cancer cells, and that FEN1 deficiency significantly enhances 3 flap levels. XPF1 is recruited to the replication forks in FEN1 mutant or FEN1-chemically inhibited cells. Notably, XPF deficiency or inhibition in those defective cells leads to accumulation of 3 flaps, replication-related DNA strand breaks, and unique mutation signatures. Furthermore, XPF and FEN1 inhibitors show synergistic effects in killing human cancer cells. In summary, we demonstrate that 3 flap-based OFM is an important alternative of 5 flap-based OFM in mammalian cells. XPF is a key nuclease to degrade 3 flaps and complete OFM for survival. Targeting this compensatory mechanism could provide new therapeutic strategies to selectively impair cancer cell survival under pre-existed replication stress. HighlightsO_LIXPF is recruited to DNA replication forks in mouse or human cells of functional deficiency of FEN1 due to genetic mutations or chemical inhibition. C_LIO_LIXPF gene deficiency or chemical inhibition results in accumulation of 3 flaps and replicative DNA single-stranded breaks. C_LIO_LIFunctional deficiency of XPF and FEN1 displays a synergy in inducing genome instability and cell death in human cancer cells. C_LI

Published in Nucleic Acids Research (predicted rank #1) · training set

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