Stochastic models for regulatory networks of the genetic toggle switch
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- 30 May 2006
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 103 (22) , 8372-8377
- https://doi.org/10.1073/pnas.0507818103
Abstract
Bistability arises within a wide range of biological systems from the lambda phage switch in bacteria to cellular signal transduction pathways in mammalian cells. Changes in regulatory mechanisms may result in genetic switching in a bistable system. Recently, more and more experimental evidence in the form of bimodal population distributions indicates that noise plays a very important role in the switching of bistable systems. Although deterministic models have been used for studying the existence of bistability properties under various system conditions, these models cannot realize cell-to-cell fluctuations in genetic switching. However, there is a lag in the development of stochastic models for studying the impact of noise in bistable systems because of the lack of detailed knowledge of biochemical reactions, kinetic rates, and molecular numbers. In this work, we develop a previously undescribed general technique for developing quantitative stochastic models for large-scale genetic regulatory networks by introducing Poisson random variables into deterministic models described by ordinary differential equations. Two stochastic models have been proposed for the genetic toggle switch interfaced with either the SOS signaling pathway or a quorum-sensing signaling pathway, and we have successfully realized experimental results showing bimodal population distributions. Because the introduced stochastic models are based on widely used ordinary differential equation models, the success of this work suggests that this approach is a very promising one for studying noise in large-scale genetic regulatory networks.Keywords
This publication has 40 references indexed in Scilit:
- Stochasticity in gene expression: from theories to phenotypesNature Reviews Genetics, 2005
- Bio-switches: what makes them robust?Current Opinion in Genetics & Development, 2004
- Probabilistic representation of gene regulatory networksBioinformatics, 2004
- Bistability and switching in the lysis/lysogeny genetic regulatory network of bacteriophage λJournal of Theoretical Biology, 2004
- Signaling switches and bistability arising from multisite phosphorylation in protein kinase cascadesThe Journal of cell biology, 2004
- A positive-feedback-based bistable ‘memory module’ that governs a cell fate decisionNature, 2003
- Modeling network dynamicsThe Journal of cell biology, 2003
- Quorum Sensing in BacteriaAnnual Review of Microbiology, 2001
- Approximate accelerated stochastic simulation of chemically reacting systemsThe Journal of Chemical Physics, 2001
- Exact stochastic simulation of coupled chemical reactionsThe Journal of Physical Chemistry, 1977