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Alternative-NHEJ Is a Mechanistically Distinct Pathway of Mammalian Chromosome Break Repair

PLoS Genetics · 2008 · Vol. 4(6) · pp. e1000110–e1000110
Nicole BennardoAnita ChengNick HuangJeremy M. Stark

Abstract

Characterizing the functional overlap and mutagenic potential of different pathways of chromosomal double-strand break (DSB) repair is important to understand how mutations arise during cancer development and treatment. To this end, we have compared the role of individual factors in three different pathways of mammalian DSB repair: alternative-nonhomologous end joining (alt-NHEJ), single-strand annealing (SSA), and homology directed repair (HDR/GC). Considering early steps of repair, we found that the DSB end-processing factors KU and CtIP affect all three pathways similarly, in that repair is suppressed by KU and promoted by CtIP. In contrast, both KU and CtIP appear dispensable for the absolute level of total-NHEJ between two tandem I-SceI-induced DSBs. During later steps of repair, we find that while the annealing and processing factors RAD52 and ERCC1 are important to promote SSA, both HDR/GC and alt-NHEJ are significantly less dependent upon these factors. As well, while disruption of RAD51 causes a decrease in HDR/GC and an increase in SSA, inhibition of this factor did not affect alt-NHEJ. These results suggest that the regulation of DSB end-processing via KU/CtIP is a common step during alt-NHEJ, SSA, and HDR/GC. However, at later steps of repair, alt-NHEJ is a mechanistically distinct pathway of DSB repair, and thus may play a unique role in mutagenesis during cancer development and therapy.

DNA Repair MechanismsGenomics and Chromatin DynamicsDNA and Nucleic Acid ChemistryBiologyNon-homologous end joiningDNA repairRAD52RAD51DNA repair protein XRCC4Ku80Homologous recombinationCell biologyDNA damage

MeSH terms

Ku AutoantigenAnimalsCarrier ProteinsCell LineDNA RepairDNA-Binding ProteinsEndodeoxyribonucleasesEndonucleasesHumansNuclear ProteinsDeoxyribonucleases, Type II Site-SpecificGenes, ReporterChromosome BreakageSaccharomyces cerevisiae ProteinsChromosomes, Mammalian

Funding

  • National Institutes of Health
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