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Single-strand DNA Breaks Cause Replisome Disassembly

Overview
Journal Mol Cell
Publisher Cell Press
Specialty Cell Biology
Date 2021 Jan 23
PMID 33484638
Citations 53
Authors
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Abstract

DNA damage impedes replication fork progression and threatens genome stability. Upon encounter with most DNA adducts, the replicative CMG helicase (CDC45-MCM2-7-GINS) stalls or uncouples from the point of synthesis, yet eventually resumes replication. However, little is known about the effect on replication of single-strand breaks or "nicks," which are abundant in mammalian cells. Using Xenopus egg extracts, we reveal that CMG collision with a nick in the leading strand template generates a blunt-ended double-strand break (DSB). Moreover, CMG, which encircles the leading strand template, "runs off" the end of the DSB. In contrast, CMG collision with a lagging strand nick generates a broken end with a single-stranded overhang. In this setting, CMG translocates along double-stranded DNA beyond the break and is then ubiquitylated and removed from chromatin by the same pathway used during replication termination. Our results show that nicks are uniquely dangerous DNA lesions that invariably cause replisome disassembly, and they suggest that CMG cannot be stored on dsDNA while cells resolve replication stress.

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References
1.
Low E, Chistol G, Zaher M, Kochenova O, Walter J . The DNA replication fork suppresses CMG unloading from chromatin before termination. Genes Dev. 2020; 34(21-22):1534-1545. PMC: 7608748. DOI: 10.1101/gad.339739.120. View

2.
Haber J . DNA recombination: the replication connection. Trends Biochem Sci. 1999; 24(7):271-5. DOI: 10.1016/s0968-0004(99)01413-9. View

3.
Natsume T, Nishimura K, Minocherhomji S, Bhowmick R, Hickson I, Kanemaki M . Acute inactivation of the replicative helicase in human cells triggers MCM8-9-dependent DNA synthesis. Genes Dev. 2017; 31(8):816-829. PMC: 5435893. DOI: 10.1101/gad.297663.117. View

4.
Mayle R, Campbell I, Beck C, Yu Y, Wilson M, Shaw C . DNA REPAIR. Mus81 and converging forks limit the mutagenicity of replication fork breakage. Science. 2015; 349(6249):742-7. PMC: 4782627. DOI: 10.1126/science.aaa8391. View

5.
Hogg M, Osterman P, Bylund G, Ganai R, Lundstrom E, Sauer-Eriksson A . Structural basis for processive DNA synthesis by yeast DNA polymerase ɛ. Nat Struct Mol Biol. 2013; 21(1):49-55. DOI: 10.1038/nsmb.2712. View