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Mechanisms for Stalled Replication Fork Stabilization: New Targets for Synthetic Lethality Strategies in Cancer Treatments

Overview
Journal EMBO Rep
Specialty Molecular Biology
Date 2018 Aug 16
PMID 30108055
Citations 99
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Abstract

Timely and faithful duplication of the entire genome depends on completion of replication. Replication forks frequently encounter obstacles that may cause genotoxic fork stalling. Nevertheless, failure to complete replication rarely occurs under normal conditions, which is attributed to an intricate network of proteins that serves to stabilize, repair and restart stalled forks. Indeed, many of the components in this network are encoded by tumour suppressor genes, and their loss of function by mutation or deletion generates genomic instability, a hallmark of cancer. Paradoxically, the same fork-protective network also confers resistance of cancer cells to chemotherapeutic drugs that induce high-level replication stress. Here, we review the mechanisms and major pathways rescuing stalled replication forks, with a focus on fork stabilization preventing fork collapse. A coherent understanding of how cells protect their replication forks will not only provide insight into how cells maintain genome stability, but also unravel potential therapeutic targets for cancers refractory to conventional chemotherapies.

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References
1.
Helmrich A, Ballarino M, Nudler E, Tora L . Transcription-replication encounters, consequences and genomic instability. Nat Struct Mol Biol. 2013; 20(4):412-8. DOI: 10.1038/nsmb.2543. View

2.
Chen E, Ahn J, Sykes D, Breyfogle L, Godfrey A, Nangalia J . RECQL5 Suppresses Oncogenic JAK2-Induced Replication Stress and Genomic Instability. Cell Rep. 2015; 13(11):2345-2352. PMC: 4691544. DOI: 10.1016/j.celrep.2015.11.037. View

3.
Min W, Bruhn C, Grigaravicius P, Zhou Z, Li F, Kruger A . Poly(ADP-ribose) binding to Chk1 at stalled replication forks is required for S-phase checkpoint activation. Nat Commun. 2013; 4:2993. DOI: 10.1038/ncomms3993. View

4.
Nam E, Cortez D . ATR signalling: more than meeting at the fork. Biochem J. 2011; 436(3):527-36. PMC: 3678388. DOI: 10.1042/BJ20102162. View

5.
Giono L, Manfredi J . The p53 tumor suppressor participates in multiple cell cycle checkpoints. J Cell Physiol. 2006; 209(1):13-20. DOI: 10.1002/jcp.20689. View