Nonequilibrium phase transition in a self-activated biological network

Hugues Berry
Phys. Rev. E 67, 031907 – Published 14 March 2003
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Abstract

We present a lattice model for a two-dimensional network of self-activated biological structures with a diffusive activating agent. The model retains basic and simple properties shared by biological systems at various observation scales, so that the structures can consist of individuals, tissues, cells, or enzymes. Upon activation, a structure emits a new mobile activator and remains in a transient refractory state before it can be activated again. Varying the activation probability, the system undergoes a nonequilibrium second-order phase transition from an active state, where activators are present, to an absorbing, activator-free state, where each structure remains in the deactivated state. We study the phase transition using Monte Carlo simulations and evaluate the critical exponents. As they do not seem to correspond to known values, the results suggest the possibility of a separate universality class.

  • Received 2 October 2002

DOI:https://doi.org/10.1103/PhysRevE.67.031907

©2003 American Physical Society

Authors & Affiliations

Hugues Berry*

  • Equipe de Recherche sur les Relations Matrice Extracellulaire-Cellules (ERRMECe), Département de Biologie, Université de Cergy-Pontoise, Boîte Postale 222, 2 Avenue A. Chauvin, 95302 Cergy-Pontoise Cedex, France

  • *Electronic address: hugues.berry@bio.u-cergy.fr

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Vol. 67, Iss. 3 — March 2003

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