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Studying Proteolysis of Cyclin B at the Single Cell Level in Whole Cell Populations
Published on: September 17, 2012
Cyclin B/cdc2 induces c-Mos stability by direct phosphorylation in Xenopus oocytes
A Castro1, M Peter, L Magnaghi-Jaulin
1Centre de Recherche de Biochimie Macromoléculaire, Centre National de la Recherche Scientifique Unité Propre de Recherche 1086, 34293 Montpellier cedex 5, France. castro@crbm.cnrs-mop.fr
Abstract:
The c-Mos proto-oncogene product plays an essential role during meiotic divisions in vertebrate eggs. In Xenopus, it is required for progression of oocyte maturation and meiotic arrest of unfertilized eggs. Its degradation after fertilization is essential to early embryogenesis. In this study we investigated the mechanisms involved in c-Mos degradation. We present in vivo evidence for ubiquitin-dependent degradation of c-Mos in activated eggs. We found that c-Mos degradation is not directly dependent on the anaphase-promoting factor activator Fizzy/cdc20 but requires cyclin degradation. We demonstrate that cyclin B/cdc2 controls in vivo c-Mos phosphorylation and stabilization. Moreover, we show that cyclin B/cdc2 is capable of directly phosphorylating c-Mos in vitro, inducing a similar mobility shift to the one observed in vivo. Tryptic phosphopeptide analysis revealed a practically identical in vivo and in vitro phosphopeptide map and allowed identification of serine-3 as the largely preferential phosphorylation site as previously described (Freeman et al., 1992). Altogether, these results demonstrate that, in vivo, stability of c-Mos is directly regulated by cyclin B/cdc2 kinase activity.
Insights
The proto-oncogene product c-Mos is crucial for vertebrate egg meiotic divisions. Cyclin B/cdc2 kinase activity directly regulates c-Mos stability through phosphorylation, impacting early embryogenesis.
Area of Science:
- Cell Biology
- Developmental Biology
- Molecular Biology
Background:
- The c-Mos proto-oncogene product is vital for meiotic divisions in vertebrate eggs.
- In Xenopus, c-Mos regulates oocyte maturation, meiotic arrest, and its degradation is essential for early embryogenesis.
Purpose of the Study:
- To investigate the mechanisms controlling c-Mos degradation in activated eggs.
- To determine the role of cyclin B/cdc2 kinase activity in c-Mos stability.
Main Methods:
- Investigated c-Mos degradation in activated Xenopus eggs.
- Utilized in vivo and in vitro phosphorylation assays with cyclin B/cdc2.
- Performed tryptic phosphopeptide mapping to identify phosphorylation sites.
Main Results:
- Provided in vivo evidence for ubiquitin-dependent degradation of c-Mos.
- Demonstrated that cyclin B/cdc2 controls c-Mos phosphorylation and stabilization in vivo.
- Showed direct in vitro phosphorylation of c-Mos by cyclin B/cdc2 at serine-3.
Conclusions:
- c-Mos degradation is ubiquitin-dependent and requires cyclin degradation.
- Cyclin B/cdc2 kinase activity directly regulates the stability of c-Mos in vivo.
- Phosphorylation of c-Mos by cyclin B/cdc2 is a key mechanism for its stabilization.
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