4.4 Article

Multistationarity in mass action networks with applications to ERK activation

Journal

JOURNAL OF MATHEMATICAL BIOLOGY
Volume 65, Issue 1, Pages 107-156

Publisher

SPRINGER HEIDELBERG
DOI: 10.1007/s00285-011-0453-1

Keywords

Mass action kinetics; Multistationarity; Linear inequalities

Funding

  1. Research Focus Dynamical Systems
  2. Saxony-Anhalt Ministry of Education

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Ordinary Differential Equations (ODEs) are an important tool in many areas of Quantitative Biology. For many ODE systems multistationarity (i.e. the existence of at least two positive steady states) is a desired feature. In general establishing multistationarity is a difficult task as realistic biological models are large in terms of states and (unknown) parameters and in most cases poorly parameterized (because of noisy measurement data of few components, a very small number of data points and only a limited number of repetitions). For establishing multistationarity hence is equivalent to establishing the existence of at least two positive solutions of a large polynomial system with unknown coefficients. For mass action networks with certain structural properties, expressed in terms of the stoichiometric matrix and the reaction rate-exponent matrix, we present necessary and sufficient conditions for multistationarity that take the form of . Solutions of these inequality systems define pairs of steady states and parameter values. We also present a sufficient condition to identify networks where the aforementioned conditions hold. To show the applicability of our results we analyse an ODE system that is defined by the mass action network describing the extracellular signal-regulated kinase (ERK) cascade (i.e. ERK-activation).

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