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Published on: October 27, 2011
Novel role for Cdc14 sequestration: Cdc14 dephosphorylates factors that promote DNA replication
Joanna Bloom1, Frederick R Cross
1The Rockefeller University, 1230 York Avenue, New York, NY 10021, USA.
Abstract:
The phosphatase Cdc14 is required for mitotic exit in budding yeast. Cdc14 promotes Cdk1 inactivation by targeting proteins that, when dephosphorylated, trigger degradation of mitotic cyclins and accumulation of the Cdk1 inhibitor, Sic1. Cdc14 is sequestered in the nucleolus during most of the cell cycle but is released into the nucleus and cytoplasm during anaphase. When Cdc14 is not properly sequestered in the nucleolus, expression of the S-phase cyclin Clb5 is required for viability, suggesting that the antagonizing activity of Clb5-dependent Cdk1 specifically is necessary when Cdc14 is delocalized. We show that delocalization of Cdc14 combined with loss of Clb5 causes defects in DNA replication. When Cdc14 is not sequestered, it efficiently dephosphorylates a subset of Cdk1 substrates including the replication factors, Sld2 and Dpb2. Mutations causing Cdc14 mislocalization interact genetically with mutations affecting the function of DNA polymerase epsilon and the S-phase checkpoint protein Mec1. Our findings suggest that Cdc14 is retained in the nucleolus to support a favorable kinase/phosphatase balance while cells are replicating their DNA, in addition to the established role of Cdc14 sequestration in coordinating nuclear segregation with mitotic exit.
Insights
Budding yeast Cdc14 phosphatase normally exits mitosis. When mislocalized, it causes DNA replication defects, requiring S-phase cyclin Clb5 for viability.
Area of Science:
- Cell Biology
- Molecular Biology
- Yeast Genetics
Background:
- The phosphatase Cdc14 is crucial for mitotic exit in budding yeast.
- Cdc14 inactivation of Cdk1 triggers cyclin degradation and Sic1 accumulation.
- Cdc14 is sequestered in the nucleolus and released during anaphase.
Purpose of the Study:
- Investigate the role of Cdc14 localization in DNA replication.
- Determine the consequences of Cdc14 mislocalization during S-phase.
- Identify genetic interactions related to Cdc14 mislocalization.
Main Methods:
- Genetic analysis of budding yeast mutants.
- Observation of DNA replication and cell viability.
- Biochemical assays of Cdk1 substrate phosphorylation.
Main Results:
- Cdc14 delocalization with loss of Clb5 impairs DNA replication.
- Mislocalized Cdc14 dephosphorylates replication factors Sld2 and Dpb2.
- Genetic interactions observed with DNA polymerase epsilon and Mec1.
Conclusions:
- Cdc14 nucleolar sequestration maintains kinase/phosphatase balance during DNA replication.
- Cdc14 localization is critical for coordinating DNA replication with cell cycle progression.
- Cdc14 plays a dual role in DNA replication and mitotic exit.
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