Ku prevents Exo1 and Sgs1-dependent resection of DNA ends in the absence of a functional MRX complex or Sae2
- 20 August 2010
- journal article
- research article
- Published by Springer Nature in The EMBO Journal
- Vol. 29 (19), 3358-3369
- https://doi.org/10.1038/emboj.2010.193
Abstract
In this study, we investigate the interplay between Ku, a central non‐homologous end‐joining component, and the Mre11–Rad50–Xrs2 (MRX) complex and Sae2, end‐processing factors crucial for initiating 5′‐3′ resection of double‐strand break (DSB) ends. We show that in the absence of end protection by Ku, the requirement for the MRX complex is bypassed and resection is executed by Exo1. In contrast, both the Exo1 and Sgs1 resection pathways contribute to DSB processing in the absence of Ku and Sae2 or when the MRX complex is intact, but functionally compromised by elimination of the Mre11 nuclease activity. The ionizing radiation sensitivity of a mutant defective for extensive resection ( exo1 Δ sgs1 Δ) cannot be suppressed by the yku70 Δ mutation, indicating that Ku suppression is specific to the initiation of resection. We provide evidence that replication‐associated DSBs need to be processed by Sae2 for repair by homologous recombination unless Ku is absent. Finally, we show that the presence of Ku exacerbates DNA end‐processing defects established in the sae2 Δ sgs1 Δ mutant, leading to its lethality.Keywords
This publication has 84 references indexed in Scilit:
- DNA end resection: Many nucleases make light workDNA Repair, 2009
- Inhibition of DNA double-strand break repair by the Ku heterodimer in mrx mutants of Saccharomyces cerevisiaeDNA Repair, 2009
- Distinct Requirements for the Rad32Mre11 Nuclease and Ctp1CtIP in the Removal of Covalently Bound Topoisomerase I and II from DNAMolecular Cell, 2009
- Mre11 Dimers Coordinate DNA End Bridging and Nuclease Processing in Double-Strand-Break RepairCell, 2008
- Sgs1 Helicase and Two Nucleases Dna2 and Exo1 Resect DNA Double-Strand Break EndsCell, 2008
- Mre11–Rad50–Nbs1-dependent processing of DNA breaks generates oligonucleotides that stimulate ATM activityThe EMBO Journal, 2008
- Break dosage, cell cycle stage and DNA replication influence DNA double strand break responseThe EMBO Journal, 2008
- Differential Regulation of the Cellular Response to DNA Double-Strand Breaks in G1Molecular Cell, 2008
- Sae2 Is an Endonuclease that Processes Hairpin DNA Cooperatively with the Mre11/Rad50/Xrs2 ComplexMolecular Cell, 2007
- Ctp1 Is a Cell-Cycle-Regulated Protein that Functions with Mre11 Complex to Control Double-Strand Break Repair by Homologous RecombinationMolecular Cell, 2007