Macroscopic dynamics of biological cells interacting via chemotaxis and direct contact

Pavel M. Lushnikov, Nan Chen, and Mark Alber
Phys. Rev. E 78, 061904 – Published 3 December 2008

Abstract

A connection is established between discrete stochastic model describing microscopic motion of fluctuating cells, and macroscopic equations describing dynamics of cellular density. Cells move towards chemical gradient (process called chemotaxis) with their shapes randomly fluctuating. Nonlinear diffusion equation is derived from microscopic dynamics in dimensions one and two using excluded volume approach. Nonlinear diffusion coefficient depends on cellular volume fraction and it is demonstrated to prevent collapse of cellular density. A very good agreement is shown between Monte Carlo simulations of the microscopic cellular Potts model and numerical solutions of the macroscopic equations for relatively large cellular volume fractions. Combination of microscopic and macroscopic models were used to simulate growth of structures similar to early vascular networks.

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  • Received 18 August 2008

DOI:https://doi.org/10.1103/PhysRevE.78.061904

©2008 American Physical Society

Authors & Affiliations

Pavel M. Lushnikov1,*, Nan Chen2, and Mark Alber2

  • 1Department of Mathematics and Statistics, University of New Mexico, Albuquerque, New Mexico 87131, USA
  • 2Department of Mathematics, University of Notre Dame, Notre Dame, Indiana 46656, USA

  • *Author to whom correspondence should be addressed; plushnik@math.unm.edu

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Issue

Vol. 78, Iss. 6 — December 2008

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