gardner1998_Fig4B

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Model Manuscripts

A theory for controlling cell cycle dynamics using a reversibly binding inhibitor.

  • TS Gardner
  • M Dolnik
  • James J Collins
Proc. Natl. Acad. Sci. U.S.A. 1998; 95 (24): 14190-14195
Abstract
We demonstrate, by using mathematical modeling of cell division cycle (CDC) dynamics, a potential mechanism for precisely controlling the frequency of cell division and regulating the size of a dividing cell. Control of the cell cycle is achieved by artificially expressing a protein that reversibly binds and inactivates any one of the CDC proteins. In the simplest case, such as the checkpoint-free situation encountered in early amphibian embryos, the frequency of CDC oscillations can be increased or decreased by regulating the rate of synthesis, the binding rate, or the equilibrium constant of the binding protein. In a more complex model of cell division, where size-control checkpoints are included, we show that the same reversible binding reaction can alter the mean cell mass in a continuously dividing cell. Because this control scheme is general and requires only the expression of a single protein, it provides a practical means for tuning the characteristics of the cell cycle in vivo.
Id Name JWS model
gardner1_Fig4B gardner1_Fig4B gardner1
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Id Name Model Simulation Simulation Simulation
task0_model0_gardner1 gardner1_Fig4B 0.0 100.0 1000

2D Plots

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Figure_4B Figure 4B 2

CSV Reports

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