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Updated: Apr 29, 2026

Two- and Three-Dimensional Live Cell Imaging of DNA Damage Response Proteins
Published on: September 28, 2012
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.
Abstract:
Although it is well established that Cdc2 kinase phosphorylates the DNA damage checkpoint protein Crb2(53BP1) in mitosis, the full impact of this modification is still unclear. The Tudor-BRCT domain protein Crb2 binds to modified histones at DNA lesions to mediate the activation of Chk1 by Rad3ATR kinase. We demonstrate here that fission yeast cells harbouring a hyperactive Cdc2CDK1 mutation (cdc2.1w) are specifically sensitive to the topoisomerase 1 inhibitor camptothecin (CPT) which breaks DNA replication forks. Unlike wild-type cells, which delay only briefly in CPT medium by activating Chk1 kinase, cdc2.1w cells bypass Chk1 to enter an extended cell-cycle arrest which depends on Cds1 kinase. Intriguingly, the ability to bypass Chk1 requires the mitotic Cdc2 phosphorylation site Crb2-T215. This implies that the presence of the mitotic phosphorylation at Crb2-T215 channels Rad3 activity towards Cds1 instead of Chk1 when forks break in S phase. We also provide evidence that hyperactive Cdc2.1w locks cells in a G1-like DNA repair mode which favours non-homologous end joining over interchromosomal recombination. Taken together, our data support a model such that elevated Cdc2 activity delays the transition of Crb2 from its G1 to its G2 mode by blocking Srs2 DNA helicase and Casein Kinase 1 (Hhp1).
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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