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Published on: September 27, 2015
Lack of the Glc7 phosphatase regulatory subunit Ypi1 activates the morphogenetic checkpoint
Maribel Marquina1, Ethel Queralt, Antonio Casamayor
1Institut de Biotecnologia i Biomedicina and Departament de Bioquímica i Biologia Molecular, Universitat Autònoma de Barcelona, Cerdanyola 08193, Spain.
Abstract:
Ypi1 is an essential regulator of the Saccharomyces cerevisiae Glc7 protein phosphatase. Although lack of Ypi1 results in a dramatic blockage in the G2/M cell cycle transition, with abnormally shaped large buds and short spindles, the molecular bases for this phenotype are still obscure. We report here that depletion of Ypi1 results in stabilization of the Pds1 securin, suggesting the activation of a G2/M checkpoint. Depletion of Ypi1 in cells deleted for MAD1/MAD2 or RAD9 still resulted in G2/M blockage, in spite that these cells lack key components of the spindle assembly and DNA damage checkpoints signaling, respectively. In contrast, deletion of SWE1, which encodes a protein kinase required for the morphogenesis checkpoint signaling, allowed passage through G2/M and recovery of normal cell morphology, although the cells did not proliferate. Depletion of Ypi1 caused stabilization of the Swe1 kinase, persistent phosphorylation of protein kinase Cdc28 at Y19, a landmark for morphogenesis checkpoint activation, and depletion of the Cdc11 septin, which explains the failure to form properly assembled septin rings at the bud necks. Deletion of SWE1 restored normal Cdc11 levels in the absence of Ypi1. These results demonstrate that Ypi1 plays an important role in the morphogenesis checkpoint, possibly by regulating Swe1.
Insights
Yeast Ypi1 regulates cell division by controlling the Swe1 kinase. Its absence activates the morphogenesis checkpoint, causing cell cycle arrest and defects in septin ring formation.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- Ypi1 is an essential regulator of the Saccharomyces cerevisiae Glc7 protein phosphatase.
- Loss of Ypi1 causes G2/M cell cycle arrest with abnormal morphology, but the underlying mechanisms are unclear.
Purpose of the Study:
- To elucidate the molecular mechanisms by which Ypi1 regulates the cell cycle and morphogenesis in Saccharomyces cerevisiae.
Main Methods:
- Investigated the role of Ypi1 in cell cycle progression using genetic deletions and protein depletion strategies.
- Analyzed checkpoint activation, protein stabilization (Pds1, Swe1), protein phosphorylation (Cdc28 at Y19), and septin ring assembly (Cdc11).
Main Results:
- Ypi1 depletion stabilizes Pds1 securin, indicating G2/M checkpoint activation.
- Ypi1 depletion leads to Swe1 kinase stabilization and persistent Cdc28 (Y19) phosphorylation, hallmarks of morphogenesis checkpoint activation.
- Absence of Ypi1 causes Cdc11 septin depletion, impairing septin ring formation.
- Deletion of SWE1 rescues G2/M blockage and Cdc11 depletion in Ypi1-depleted cells.
Conclusions:
- Ypi1 is crucial for the morphogenesis checkpoint, likely by regulating Swe1 kinase activity.
- Ypi1's function is essential for proper septin ring assembly and cell division in yeast.
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