Gérard, ClaudeUniversity of Oxford (Oxford Centre for Integrative Systems Biology, Department of Biochemistry)
Author
Tyson, John J.Virginia Polytechnic Institute and State University (Department of Biological Sciences)
Author
Novák, BélaUniversity of Oxford (Oxford Centre for Integrative Systems Biology, Department of Biochemistry)
Author
Abstract
The eukaryotic cell cycle is characterized by alternating oscillations in the activities of cyclin-dependent kinase (Cdk) and the anaphase-promoting complex (APC). Successful completion of the cell cycle is dependent on the precise, temporally ordered appearance of these activities. A modest level of Cdk activity is sufficient to initiate DNA replication, but mitosis and APC activation require an elevated Cdk activity. In present-day eukaryotes, this temporal order is provided by a complex network of regulatory proteins that control both Cdk and APC activities via sharp thresholds, bistability, and time delays. Using simple computational models, we show here that these dynamical features of cell-cycle organization could emerge in a control system driven by a single Cdk/cyclin complex and APC wired in a negative-feedback loop. We show that ordered phosphorylation of cellular proteins could be explained by multisite phosphorylation/dephosphorylation and competition of substrates for interconverting kinase (Cdk) and phosphatase. In addition, the competition of APC substrates for ubiquitylation can create and maintain sustained oscillations in cyclin levels. We propose a sequence of models that gets closer and closer to a realistic model of cell-cycle control in yeast. Since these models lack the elaborate control mechanisms characteristic of modern eukaryotes, they suggest that bistability and time delay may have characterized eukaryotic cell divisions before the current cell-cycle control network evolved in all its complexity.
Affiliations
University of OxfordOxford Centre for Integrative Systems Biology, Department of Biochemistry
Citations
APA
Chicago
FWB
Gérard, C., Tyson, John J., & Novák, B. (2013). Minimal Models for Cell-Cycle Control Based on Competitive Inhibition and Multisite Phosphorylations of Cdk Substrates. Biophysical Journal, 104, 1367-1379. https://doi.org/10.1016/j.bpj.2013.02.012 (Original work published 2013)