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Mathematical model of the morphogenesis checkpoint in budding yeast. | LitMetric

AI Article Synopsis

  • The morphogenesis checkpoint in budding yeast delays the cell cycle when conditions prevent bud formation, primarily through the activation of Swe1 kinase which halts progression in the G2 phase.
  • The study proposes a molecular network for controlling Swe1, integrating insights from both budding and fission yeast, and formulates this as differential equations for numerical simulation.
  • The model not only reproduces behaviors seen in various checkpoint mutants but also suggests a new role for Hsl1 in inhibiting Swe1 activity, indicating that the checkpoint raises the size threshold for cell cycle progression.

Article Abstract

The morphogenesis checkpoint in budding yeast delays progression through the cell cycle in response to stimuli that prevent bud formation. Central to the checkpoint mechanism is Swe1 kinase: normally inactive, its activation halts cell cycle progression in G2. We propose a molecular network for Swe1 control, based on published observations of budding yeast and analogous control signals in fission yeast. The proposed Swe1 network is merged with a model of cyclin-dependent kinase regulation, converted into a set of differential equations and studied by numerical simulation. The simulations accurately reproduce the phenotypes of a dozen checkpoint mutants. Among other predictions, the model attributes a new role to Hsl1, a kinase known to play a role in Swe1 degradation: Hsl1 must also be indirectly responsible for potent inhibition of Swe1 activity. The model supports the idea that the morphogenesis checkpoint, like other checkpoints, raises the cell size threshold for progression from one phase of the cell cycle to the next.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC2173725PMC
http://dx.doi.org/10.1083/jcb.200306139DOI Listing

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