Hyperactive Cdc2 kinase interferes with the response to broken replication forks by trapping S.pombe Crb2 in its

Salah Adam Mahyous Saeyd1, Katarzyna Ewert-Krzemieniewska1, Boyin Liu1

  • 1Genome Biology Group, College of Natural Sciences, School of Biological Sciences, Bangor University, Brambell Building, Deiniol Road, Bangor LL57 2UW, Wales, United Kingdom.

Insights

Hyperactive Cdc2 kinase in fission yeast alters DNA repair pathways. Mitotic phosphorylation of Crb2-T215 by Cdc2 diverts DNA damage response from Chk1 to Cds1, favoring non-homologous end joining.

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Genetics

Background:

  • Cdc2 kinase phosphorylates Crb2 (53BP1) during mitosis, but the functional consequences remain unclear.
  • Crb2 is a Tudor-BRCT domain protein that recruits Rad3-ATR kinase to activate Chk1 at DNA lesions.

Purpose of the Study:

  • To investigate the impact of hyperactive Cdc2 kinase on DNA damage response pathways.
  • To elucidate the role of Crb2 phosphorylation at T215 in response to replication fork breaks.

Main Methods:

  • Utilized fission yeast strains with a hyperactive Cdc2-CDK1 mutation (cdc2.1w).
  • Assessed sensitivity to camptothecin (CPT), a topoisomerase 1 inhibitor.
  • Analyzed cell-cycle arrest, Chk1 and Cds1 kinase activation, and DNA repair pathway preference.

Main Results:

  • cdc2.1w cells exhibit sensitivity to CPT and bypass Chk1 activation, entering a Cds1-dependent arrest.
  • Bypass of Chk1 requires the mitotic phosphorylation site Crb2-T215, suggesting a switch in Rad3-ATR signaling.
  • Hyperactive Cdc2.1w promotes a G1-like DNA repair state favoring non-homologous end joining over recombination.

Conclusions:

  • Elevated Cdc2 activity, via Crb2-T215 phosphorylation, redirects DNA damage signaling from Chk1 to Cds1 during S-phase replication stress.
  • This mitotic phosphorylation delays Crb2's transition to its G2 mode, impacting DNA repair pathway choice.

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