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Updated: Jul 13, 2026

Manipulation and Analysis of Cell Cycle-Dependent Processes in Budding Yeast
Published on: September 26, 2025
Differential susceptibility of yeast S and M phase CDK complexes to inhibitory tyrosine phosphorylation
Mignon A Keaton1, Elaine S G Bardes, Aron R Marquitz
1Department of Pharmacology and Cancer Biology, Duke University Medical Center, Durham, NC 27710, USA.
Background:
Several checkpoint pathways employ Wee1-mediated inhibitory tyrosine phosphorylation of cyclin-dependent kinases (CDKs) to restrain cell-cycle progression. Whereas in vertebrates this strategy can delay both DNA replication and mitosis, in yeast cells only mitosis is delayed. This is particularly surprising because yeasts, unlike vertebrates, employ a single family of cyclins (B type) and the same CDK to promote both S phase and mitosis. The G2-specific arrest could be explained in two fundamentally different ways: tyrosine phosphorylation of cyclin/CDK complexes could leave sufficient residual activity to promote S phase, or S phase-promoting cyclin/CDK complexes could somehow be protected from checkpoint-induced tyrosine phosphorylation.
Results:
We demonstrate that in Saccharomyces cerevisiae, several cyclin/CDK complexes are protected from inhibitory tyrosine phosphorylation, allowing Clb5,6p to promote DNA replication and Clb3,4p to promote spindle assembly, even under checkpoint-inducing conditions that block nuclear division. In vivo, S phase-promoting Clb5p/Cdc28p complexes were phosphorylated more slowly and dephosphorylated more effectively than were mitosis-promoting Clb2p/Cdc28p complexes. Moreover, we show that the CDK inhibitor (CKI) Sic1p protects bound Clb5p/Cdc28p complexes from tyrosine phosphorylation, allowing the accumulation of unphosphorylated complexes that are unleashed when Sic1p is degraded to promote S phase. The vertebrate CKI p27(Kip1) similarly protects Cyclin A/Cdk2 complexes from Wee1, suggesting that the antagonism between CKIs and Wee1 is evolutionarily conserved.
Conclusions:
In yeast cells, the combination of CKI binding and preferential phosphorylation/dephosphorylation of different B cyclin/CDK complexes renders S phase progression immune from checkpoints acting via CDK tyrosine phosphorylation.
Insights
Yeast cell-cycle checkpoints protect S phase progression from inhibitory tyrosine phosphorylation. Cyclin-dependent kinase inhibitors (CKIs) shield S phase complexes, ensuring DNA replication despite mitotic arrest signals.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Cell-cycle progression is regulated by checkpoint pathways involving Wee1-mediated tyrosine phosphorylation of cyclin-dependent kinases (CDKs).
- In vertebrates, this inhibits both DNA replication and mitosis, but in yeast, only mitosis is delayed, despite a single CDK and B-type cyclins for both phases.
- This suggests either residual CDK activity or protection of S phase-promoting complexes from phosphorylation.
Purpose of the Study:
- To investigate the mechanisms underlying the G2-specific cell-cycle arrest in yeast.
- To determine how S phase progression is maintained under checkpoint-inducing conditions.
Main Methods:
- Studied cyclin/CDK complexes in Saccharomyces cerevisiae.
- Analyzed phosphorylation and dephosphorylation rates of S phase and mitosis-promoting complexes in vivo.
- Investigated the role of CDK inhibitor Sic1p in protecting cyclin/CDK complexes.
Main Results:
- Yeast cyclin/CDK complexes are protected from inhibitory tyrosine phosphorylation, allowing DNA replication and spindle assembly.
- S phase-promoting complexes (Clb5p/Cdc28p) were phosphorylated slower and dephosphorylated faster than mitosis-promoting complexes (Clb2p/Cdc28p).
- The CDK inhibitor Sic1p protects Clb5p/Cdc28p from tyrosine phosphorylation, enabling S phase progression upon Sic1p degradation. Vertebrate CKI p27(Kip1) shows similar protection.
Conclusions:
- In yeast, S phase progression is rendered insensitive to tyrosine phosphorylation-based checkpoints.
- This immunity is achieved through CKI binding and differential regulation of B cyclin/CDK complex phosphorylation.
- The antagonistic relationship between CKIs and Wee1 in regulating CDK activity is conserved across species.
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