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A minimal cascade model for the mitotic oscillator involving cyclin and cdc2 kinase
1Faculté des Sciences, Université Libre de Bruxelles, Belgium.
Abstract:
A minimal model for the mitotic oscillator is presented. The model, built on recent experimental advances, is based on the cascade of post-translational modification that modulates the activity of cdc2 kinase during the cell cycle. The model pertains to the situation encountered in early amphibian embryos, where the accumulation of cyclin suffices to trigger the onset of mitosis. In the first cycle of the bicyclic cascade model, cyclin promotes the activation of cdc2 kinase through reversible dephosphorylation, and in the second cycle, cdc2 kinase activates a cyclin protease by reversible phosphorylation. That cyclin activates cdc2 kinase while the kinase triggers the degradation of cyclin has suggested that oscillations may originate from such a negative feedback loop [Félix, M. A., Labbé, J. C., Dorée, M., Hunt, T. & Karsenti, E. (1990) Nature (London) 346, 379-382]. This conjecture is corroborated by the model, which indicates that sustained oscillations of the limit cycle type can arise in the cascade, provided that a threshold exists in the activation of cdc2 kinase by cyclin and in the activation of cyclin proteolysis by cdc2 kinase. The analysis shows how miototic oscillations may readily arise from time lags associated with these thresholds and from the delayed negative feedback provided by cdc2-induced cyclin degradation. A mechanism for the origin of the thresholds is proposed in terms of the phenomenon of zero-order ultrasensitivity previously described for biochemical systems regulated by covalent modification.
Insights
This study presents a minimal model for the mitotic oscillator in early amphibian embryos. The model explains how cyclin accumulation and cdc2 kinase activity generate cell cycle oscillations through a negative feedback loop.
Area of Science:
- Cell Biology
- Biochemistry
- Systems Biology
Background:
- The cell cycle is regulated by complex molecular mechanisms, including the activity of cdc2 kinase.
- Early amphibian embryos provide a model system for studying cell cycle control due to cyclin accumulation driving mitosis onset.
Purpose of the Study:
- To present a minimal mathematical model of the mitotic oscillator.
- To explain the origin of cell cycle oscillations based on experimental data.
Main Methods:
- Development of a minimal model based on a cascade of post-translational modifications.
- Analysis of a bicyclic cascade involving cyclin and cdc2 kinase activity.
- Investigating the role of thresholds and time lags in oscillation generation.
Main Results:
- The model demonstrates that sustained oscillations (limit cycle type) can arise from the interplay of cyclin and cdc2 kinase.
- Oscillations are facilitated by thresholds in cdc2 kinase activation and cyclin proteolysis.
- Delayed negative feedback from cdc2-induced cyclin degradation is crucial for mitotic oscillations.
Conclusions:
- A minimal model successfully explains mitotic oscillations in early amphibian embryos.
- The model highlights the importance of negative feedback loops and thresholds in cell cycle regulation.
- Zero-order ultrasensitivity is proposed as a mechanism for threshold generation in covalent modification systems.