Cell cycle regulation of DNA double-strand break end resection by Cdk1-dependent Dna2 phosphorylation
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Summary
Using Saccharomyces cerevisiae, evidence is provided for Cdk1-dependent phosphorylation of the resection nuclease Dna2 at Thr4, Ser17 and Ser237 that stimulates its recruitment to DSBs, resection and subsequent Mec1- dependent phosphorylations.
- Type
- article
- Published
- 2011-08-14
- Cited by
- 178
- References
- 47
- Access
- Open access
- OpenAlex
- https://openalex.org/W1990441769
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:2397267
Keywords
Homologous recombination, Replication protein A, Cyclin-dependent kinase 1, Cell biology, Non-homologous end joining
References
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- Mechanism of the ATP-dependent DNA End Resection Machinery from S. cerevisiae
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- Human CtIP Mediates Cell Cycle Control of DNA End Resection and Double Strand Break Repair
- Role of Dnl4–Lif1 in nonhomologous end-joining repair complex assembly and suppression of homologous recombination
- The CDK regulates repair of double‐strand breaks by homologous recombination during the cell cycle
- Temporally and biochemically distinct activities of Exo1 during meiosis: double-strand-break resection and resolution of double-Holliday Junctions
- Cell cycle-dependent phosphorylation of Rad53 kinase by Cdc5 and Cdc28 modulates checkpoint adaptation
- DNA end resection, homologous recombination and DNA damage checkpoint activation require CDK1
- Saccharomyces CDK1 Phosphorylates Rad53 Kinase in Metaphase, Influencing Cellular Morphogenesis*
- Break dosage, cell cycle stage and DNA replication influence DNA double strand break response
- Sae2, Exo1 and Sgs1 collaborate in DNA double-strand break processing
- Srs2 and Sgs1-Top3 suppress crossovers during double-strand break repair in yeast.
- Systematic identification of cell cycle-dependent yeast nucleocytoplasmic shuttling proteins by prediction of composite motifs
- Differential regulation of the cellular response to DNA double-strand breaks in G1.
- An overview of Cdk1-controlled targets and processes
- Cdc2-cyclin B kinase activity links Crb2 and Rqh1-topoisomerase III.
Cited by
- Four pillars of the S-phase checkpoint.
- Working hard for recovery: mitotic kinases in the DNA damage checkpoint
- Sumoylation of the Rad1 nuclease promotes DNA repair and regulates its DNA association
- Biochemical Mechanism of DSB End Resection and its Regulation
- Sharpening the ends for repair: mechanisms and regulation of DNA resection.
- Immunofluorescence-based methods to monitor DNA end resection
- Genetic instability is prevented by Mrc1-dependent spatio-temporal separation of replicative and repair activities of homologous recombination
- Exo1 plays a major role in DNA end resection in humans and influences double-strand break repair and damage signaling decisions
- Characterisation of the role of autophagy in DNA damage repair
- Replication Stress in Mammalian Cells and Its Consequences for Mitosis
- The cancer therapeutic potential of Chk1 inhibitors: how mechanistic studies impact on clinical trial design.
- Investigation of mechanisms that suppress non-allelic homologous recombination
- Repair Pathway Choices and Consequences at the Double-Strand Break
- Étude du rôle de la phosphorylation du complexe Mre11-Rad50-Xrs2 dans le maintien de l'intégrité génomique
- DNA End Resection: Nucleases Team Up with the Right Partners to Initiate Homologous Recombination*
- Regulation of recombination and genomic maintenance.
- Mechanisms and Regulation of Mitotic Recombination in Saccharomyces cerevisiae
- Nuclease activity of Saccharomyces cerevisiae Dna2 inhibits its potent DNA helicase activity
- Targeting cell cycle regulators in hematologic malignancies
- Okazaki Fragment Processing-independent Role for Human Dna2 Enzyme during DNA Replication*
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