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.

Current Biology : CB
|December 1, 1996
PubMed
Abstract

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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