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Updated: Apr 7, 2026

Manipulation and Analysis of Cell Cycle-Dependent Processes in Budding Yeast
Published on: September 26, 2025
Two Distinct Cdc2 Pools Regulate Cell Cycle Progression and the DNA Damage Response in the Fission Yeast S.pombe
Thomas Caspari1, Victoria Hilditch1
1Genome Biology Group, School of Medical Sciences, Bangor University, Bangor, LL57 2UW, Wales, United Kingdom.
Abstract:
The activity of Cdc2 (CDK1) kinase, which coordinates cell cycle progression and DNA break repair, is blocked upon its phosphorylation at tyrosine 15 (Y15) by Wee1 kinase in the presence of DNA damage. How Cdc2 can support DNA repair whilst being inactivated by the DNA damage checkpoint remains to be explained. Human CDK1 is phosphorylated by Myt1 kinase at threonine 14 (T14) close to its ATP binding site before being modified at threonine 161 (T167Sp) in its T-loop by the CDK-activating kinase (CAK). While modification of T161 promotes association with the cyclin partner, phosphorylation of T14 inhibits the CDK1-cyclin complex. This inhibition is further enforced by the modification of Y15 by Wee1 in the presence of DNA lesions. In S.pombe, the dominant inhibition of Cdc2 is provided by the phosphorylation of Y15 and only a small amount of Cdc2 is modified at T14 when cells are in S phase. Unlike human cells, both inhibitory modifications are executed by Wee1. Using the novel IEFPT technology, which combines isoelectric focusing (IEF) with Phos-tag SDS electrophoresis (PT), we report here that S.pombe Cdc2 kinase exists in seven forms. While five forms are phosphorylated, two species are not. Four phospho-forms associate with cyclin B (Cdc13) of which only two are modified at Y15 by Wee1. Interestingly, only one Y15-modified species carries also the T14 modification. The fifth phospho-form has a low affinity for cyclin B and is neither Y15 nor T14 modified. The two unphosphorylated forms may contribute directly to the DNA damage response as only they associate with the DNA damage checkpoint kinase Chk1. Interestingly, cyclin B is also present in the unphosphorylated pool. We also show that the G146D mutation in Cdc2.1w, which renders Cdc2 insensitive to Wee1 inhibition, is aberrantly modified in a Wee1-dependent manner. In conclusion, our work adds support to the idea that two distinct Cdc2 pools regulate cell cycle progression and the response to DNA damage.
Insights
Two distinct Cdc2 (CDK1) kinase pools regulate cell cycle and DNA repair. One pool, regulated by Wee1 and Myt1, controls cell cycle, while the other, associated with Chk1, aids DNA repair.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Cdc2 (CDK1) kinase activity is crucial for cell cycle progression and DNA repair.
- DNA damage triggers inhibitory phosphorylation of Cdc2 at tyrosine 15 (Y15) by Wee1 kinase.
- The precise roles of different Cdc2 phosphorylation states in DNA repair remain unclear.
Purpose of the Study:
- To investigate the distinct forms of S.pombe Cdc2 kinase.
- To determine the association of these forms with cyclin B and their phosphorylation status.
- To elucidate the role of specific Cdc2 pools in DNA damage response.
Main Methods:
- Utilized novel Isoelectric Focusing combined with Phos-tag SDS Electrophoresis (IEFPT) technology.
- Analyzed S.pombe Cdc2 kinase forms, their phosphorylation at T14 and Y15, and cyclin B association.
- Investigated the interaction of Cdc2 forms with the DNA damage checkpoint kinase Chk1.
Main Results:
- Identified seven distinct forms of S.pombe Cdc2 kinase, five phosphorylated and two unphosphorylated.
- Four phosphorylated forms associated with cyclin B, with only two being Y15 phosphorylated by Wee1.
- Unphosphorylated Cdc2 forms, along with cyclin B, associated with Chk1, suggesting a role in DNA repair.
Conclusions:
- Two distinct pools of Cdc2 kinase likely regulate cell cycle progression and DNA damage response separately.
- The findings support a model where specific Cdc2 modifications dictate its function in either cell cycle control or DNA repair.
- This study provides new insights into the complex regulation of Cdc2 kinase activity in response to cellular stress.
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