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February 8, 2009Journal of Biological Chemistry511 citationsOpen Access

Human CtIP Mediates Cell Cycle Control of DNA End Resection and Double Strand Break Repair

PHPablo HuertasSJStephen P. Jackson

Key Points

  • This research aims to understand how CtIP mediates DNA end resection and double strand break repair during the cell cycle.
  • Mutated CDK target motif in CtIP to observe effects on DSB resection and repair.
  • Assessed DSB repair efficiency and chromosomal rearrangements in cells expressing different CtIP mutations.
  • Performed experiments on CDK inhibition's impact on DSB resection in mutant CtIP-expressing cells.
  • Mutating Thr-847 to Ala impairs DSB resection, while the Thr-to-Glu mutant shows resection under CDK inhibition.
  • Both Ala and Glu mutations reduce DSB repair efficiency and increase sensitivity to DSB-generating agents.
  • Mutations affect the frequency and nature of radiation-induced chromosomal rearrangements.

Abstract

In G(0) and G(1), DNA double strand breaks are repaired by nonhomologous end joining, whereas in S and G(2), they are also repaired by homologous recombination. The human CtIP protein controls double strand break (DSB) resection, an event that occurs effectively only in S/G(2) and that promotes homologous recombination but not non-homologous end joining. Here, we mutate a highly conserved cyclin-dependent kinase (CDK) target motif in CtIP and reveal that mutating Thr-847 to Ala impairs resection, whereas mutating it to Glu to mimic constitutive phosphorylation does not. Moreover, we show that unlike cells expressing wild-type CtIP, cells expressing the Thr-to-Glu mutant resect DSBs even after CDK inhibition. Finally, we establish that Thr-847 mutations to either Ala or Glu affect DSB repair efficiency, cause hypersensitivity toward DSB-generating agents, and affect the frequency and nature of radiation-induced chromosomal rearrangements. These results suggest that CDK-mediated control of resection in human cells operates by mechanisms similar to those recently established in yeast.

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Cite This Study

Huertas et al. (2009) studied this question.

synapsesocial.com/papers/69ff0393581c6e761e7751e4https://doi.org/10.1074/jbc.m808906200
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