Testing a Mathematical Model of the Yeast Cell Cycle
Open Access
- 1 January 2002
- journal article
- research article
- Published by American Society for Cell Biology (ASCB) in Molecular Biology of the Cell
- Vol. 13 (1) , 52-70
- https://doi.org/10.1091/mbc.01-05-0265
Abstract
We derived novel, testable predictions from a mathematical model of the budding yeast cell cycle. A key qualitative prediction of bistability was confirmed in a strain simultaneously lacking cdc14 and G1 cyclins. The model correctly predicted quantitative dependence of cell size on gene dosage of the G1 cyclinCLN3, but it incorrectly predicted strong genetic interactions between G1 cyclins and the anaphase- promoting complex specificity factor Cdh1. To provide constraints on model generation, we determined accurate concentrations for the abundance of all nine cyclins as well as the inhibitor Sic1 and the catalytic subunit Cdc28. For many of these we determined abundance throughout the cell cycle by centrifugal elutriation, in the presence or absence of Cdh1. In addition, perturbations to the Clb-kinase oscillator were introduced, and the effects on cyclin and Sic1 levels were compared between model and experiment. Reasonable agreement was obtained in many of these experiments, but significant experimental discrepancies from the model predictions were also observed. Thus, the model is a strong but incomplete attempt at a realistic representation of cell cycle control. Constraints of the sort developed here will be important in development of a truly predictive model.Keywords
This publication has 87 references indexed in Scilit:
- Exit from Mitosis in Budding YeastMolecular Cell, 2000
- Model scenarios for evolution of the eukaryotic cell cyclePhilosophical Transactions Of The Royal Society B-Biological Sciences, 1998
- A novel Mcm1-dependent element in the SWI4, CLN3, CDC6, and CDC47 promoters activates M/G1-specific transcription.Genes & Development, 1997
- Switching transcription on and off during the yeast cell cycle: Cln/Cdc28 kinases activate bound transcription factor SBF (Swi4/Swi6) at start, whereas Clb/Cdc28 kinases displace it from the promoter in G2.Genes & Development, 1996
- Starting the cell cycle: what's the point?Current Opinion in Cell Biology, 1995
- Genes involved in sister chromatid separation are needed for b-type cyclin proteolysis in budding yeastCell, 1995
- Cell cycle regulted transcription in yeastCurrent Opinion in Cell Biology, 1994
- CLB5 and CLB6, a new pair of B cyclins involved in DNA replication in Saccharomyces cerevisiae.Genes & Development, 1993
- An Inhibitor of p34
CDC28
Protein Kinase Activity from Saccharomyces cerevisiaeScience, 1993
- Characterization of four B-type cyclin genes of the budding yeast Saccharomyces cerevisiae.Molecular Biology of the Cell, 1992