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Updated: Aug 15, 2026

Spatiotemporal Analysis of Cytokinetic Events in Fission Yeast
Published on: February 20, 2017
Protein phosphatase 2A regulates MPF activity and sister chromatid cohesion in budding yeast
J Minshull1, A Straight, A D Rudner
1Department of Physiology, University of California, San Francisco 94143-0444, USA.
Background:
Mitosis is regulated by MPF (maturation promoting factor), the active form of Cdc2/28-cyclin B complexes. Increasing levels of cyclin B abundance and the loss of inhibitory phosphates from Cdc2/28 drives cells into mitosis, whereas cyclin B destruction inactivates MPF and drives cells out of mitosis. Cells with defective spindles are arrested in mitosis by the spindle-assembly checkpoint, which prevents the destruction of mitotic cyclins and the inactivation of MPF. We have investigated the relationship between the spindle-assembly checkpoint, cyclin destruction, inhibitory phosphorylation of Cdc2/28, and exit from mitosis.
Results:
The previously characterized budding yeast mad mutants lack the spindle-assembly checkpoint. Spindle depolymerization does not arrest them in mitosis because they cannot stabilize cyclin B. In contrast, a newly isolated mutant in the budding yeast CDC55 gene, which encodes a protein phosphatase 2A (PP2A) regulatory subunit, shows a different checkpoint defect. In the presence of a defective spindle, these cells separate their sister chromatids and leave mitosis without inducing cyclin B destruction. Despite the persistence of B-type cyclins, cdc55 mutant cells inactivate MPF. Two experiments show that this inactivation is due to inhibitory phosphorylation on Cdc28: phosphotyrosine accumulates on Cdc28 in cdc55 delta cells whose spindles have been depolymerized, and a cdc28 mutant that lacks inhibitory phosphorylation sites on Cdc28 allows spindle defects to arrest cdc55 mutants in mitosis with active MPF and unseparated sister chromatids.
Conclusions:
We conclude that perturbations of protein phosphatase activity allow MPF to be inactivated by inhibitory phosphorylation instead of by cyclin destruction. Under these conditions, sister chromatid separation appears to be regulated by MPF activity rather than by protein degradation. We discuss the role of PP2A and Cdc28 phosphorylation in cell-cycle control, and the possibility that the novel mitotic exit pathway plays a role in adaptation to prolonged activation of the spindle-assembly checkpoint.
Insights
Budding yeast lacking spindle-assembly checkpoint proteins cannot stabilize cyclin B. A CDC55 mutant bypasses cyclin destruction, inactivating maturation promoting factor (MPF) via inhibitory phosphorylation to exit mitosis.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- Mitosis regulation involves maturation promoting factor (MPF), formed by Cdc2/28-cyclin B complexes.
- MPF activation requires cyclin B accumulation and Cdc2/28 dephosphorylation.
- The spindle-assembly checkpoint prevents mitotic exit by inhibiting cyclin destruction and MPF inactivation.
Purpose of the Study:
- Investigate the interplay between the spindle-assembly checkpoint, cyclin destruction, Cdc2/28 phosphorylation, and mitotic exit.
- Characterize the role of CDC55 gene mutations in mitotic regulation.
Main Methods:
- Analysis of budding yeast mutants (mad and cdc55).
- Assessment of spindle-assembly checkpoint function.
- Monitoring of cyclin B levels and MPF activity.
- Examination of Cdc2/28 phosphorylation status (phosphotyrosine accumulation).
Main Results:
- Budding yeast mad mutants lacking the spindle-assembly checkpoint fail to arrest with defective spindles due to inability to stabilize cyclin B.
- A cdc55 mutant exhibits a distinct checkpoint defect, allowing sister chromatid separation and mitotic exit despite defective spindles and persistent B-type cyclins.
- In cdc55 mutants, MPF is inactivated by inhibitory phosphorylation of Cdc28, evidenced by phosphotyrosine accumulation.
- A cdc28 mutant lacking inhibitory phosphorylation sites arrests cdc55 mutants in mitosis with active MPF and unseparated chromatids.
Conclusions:
- Perturbations in protein phosphatase activity can lead to MPF inactivation via inhibitory phosphorylation, bypassing cyclin destruction.
- Sister chromatid separation may be regulated by MPF activity, rather than solely by protein degradation, under these conditions.
- The findings suggest a novel mitotic exit pathway potentially involved in adaptation to prolonged spindle-assembly checkpoint activation, highlighting the roles of PP2A and Cdc28 phosphorylation in cell-cycle control.
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