Hierarchy of nonhomologous end-joining, single-strand annealing and gene conversion at site-directed DNA double-strand breaks
Open Access
- 23 May 2008
- journal article
- research article
- Published by Oxford University Press (OUP) in Nucleic Acids Research
- Vol. 36 (12) , 4088-4098
- https://doi.org/10.1093/nar/gkn347
Abstract
In mammalian cells, DNA double-strand breaks (DSBs) are repaired by three pathways, nonhomologous end-joining (NHEJ), gene conversion (GC) and single-strand annealing (SSA). These pathways are distinct with regard to repair efficiency and mutagenic potential and must be tightly controlled to preserve viability and genomic stability. Here, we employed chromosomal reporter constructs to characterize the hierarchy of NHEJ, GC and SSA at a single I-SceI-induced DSB in Chinese hamster ovary cells. We discovered that the use of GC and SSA was increased by 6- to 8-fold upon loss of Ku80 function, suggesting that NHEJ is dominant over the other two pathways. However, NHEJ efficiency was not altered if GC was impaired by Rad51 knockdown. Interestingly, when SSA was made available as an alternative mode for DSB repair, loss of Rad51 function led to an increase in SSA activity at the expense of NHEJ, implying that Rad51 may indirectly promote NHEJ by limiting SSA. We conclude that a repair hierarchy exists to limit the access of the most mutagenic mechanism, SSA, to the break site. Furthermore, the cellular choice of repair pathways is reversible and can be influenced at the level of effector proteins such as Ku80 or Rad51.Keywords
This publication has 61 references indexed in Scilit:
- Genetic Analysis of the DNA-dependent Protein Kinase Reveals an Inhibitory Role of Ku in Late S–G2 Phase DNA Double-strand Break RepairJournal of Biological Chemistry, 2001
- Mutation in Brca2 stimulates error-prone homology-directed repair of DNA double-strand breaks occurring between repeated sequencesThe EMBO Journal, 2001
- Structure of the Ku heterodimer bound to DNA and its implications for double-strand break repairNature, 2001
- Radiation-induced genomic rearrangements formed by nonhomologous end-joining of DNA double-strand breaks.2001
- Homologous recombinational repair of double-strand breaks in yeast is enhanced by MAT heterozygosity through yKU-dependent and -independent mechanisms.2001
- Initial sequencing and analysis of the human genomeNature, 2001
- DNA Length Dependence of the Single-Strand Annealing Pathway and the Role of Saccharomyces cerevisiae RAD59 in Double-Strand Break RepairMolecular and Cellular Biology, 2000
- DNA double-strand break repair in cell-free extracts from Ku80-deficient cells: implications for Ku serving as an alignment factor in non-homologous DNA end joiningNucleic Acids Research, 2000
- Mouse RAD54 Affects DNA Double-Strand Break Repair and Sister Chromatid ExchangeMolecular and Cellular Biology, 2000
- Lack of chromosome territoriality in yeast: Promiscuous rejoining of broken chromosome endsProceedings of the National Academy of Sciences, 1996