TYPE-DEPENDENT STOCHASTIC ISING MODEL DESCRIBING THE DYNAMICS OF A NON-SYMMETRIC FEEDBACK MODULE

Abstract

We study an alternative approach to model the dynamical behaviors of biological feedback loop, that is, a type-dependent spin system, this class of stochastic models was introduced by Fernandez et. al [13], and are useful since take account to inherent variability of gene expression. We analyze a non symmetric feedback module being an extension for the repressilator, the first synthetic biological oscillator, invented by Elowitz and Leibler [7]. We consider a mean-field dynamics for a type-dependent Ising model, and then study the empirical-magnetization vector representing concentration of molecules. We apply a convergence result from stochastic jump processes to deterministic trajectories and present a bifurcation analysis for the associated dynamical system. We show that non-symmetric module under study can exhibit very rich behaviours, including the empirical oscillations described by repressilator.

Más información

Título según WOS: ID WOS:000381629300005 Not found in local WOS DB
Título de la Revista: MATHEMATICAL BIOSCIENCES AND ENGINEERING
Volumen: 13
Número: 5
Editorial: SPRINGFIELD
Fecha de publicación: 2016
Página de inicio: 981
Página final: 998
DOI:

10.3934/mbe.2016026

Notas: ISI