Continuum approximations for lattice-free multi-species models of collective cell migration

Cell migration within tissues involves the interaction of many cells from distinct subpopulations. In this work, we present a discrete model of collective cell migration where the motion of individual cells is driven by random forces, short range repulsion forces to mimic crowding, and longer range...

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Main Authors: Matsiaka, O, Penington, C, Baker, R, Simpson, M
Format: Journal article
Language:English
Published: Elsevier 2017
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author Matsiaka, O
Penington, C
Baker, R
Simpson, M
author_facet Matsiaka, O
Penington, C
Baker, R
Simpson, M
author_sort Matsiaka, O
collection OXFORD
description Cell migration within tissues involves the interaction of many cells from distinct subpopulations. In this work, we present a discrete model of collective cell migration where the motion of individual cells is driven by random forces, short range repulsion forces to mimic crowding, and longer range attraction forces to mimic adhesion. This discrete model can be used to simulate a population of cells that is composed of K ≥ 1 distinct subpopulations. To analyse the discrete model we formulate a hierarchy of moment equations that describe the spatial evolution of the density of agents, pairs of agents, triplets of agents, and so forth. To solve the hierarchy of moment equations we introduce two forms of closure: (i) the mean field approximation, which effectively assumes that the distributions of individual agents are independent; and (ii) a moment dynamics description that is based on the Kirkwood superposition approximation. The moment dynamics description provides an approximate way of incorporating spatial patterns, such as agent clustering, into the continuum description. Comparing the performance of the two continuum descriptions confirms that both perform well when adhesive forces are sufficiently weak. In contrast, the moment dynamics description outperforms the mean field model when adhesive forces are sufficiently large. This is a first attempt to provide an accurate continuum description of a lattice-free, multi-species model of collective cell migration.
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spelling oxford-uuid:f679dd5b-59b9-4c30-bbda-2914943439fc2022-03-27T12:35:22ZContinuum approximations for lattice-free multi-species models of collective cell migrationJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:f679dd5b-59b9-4c30-bbda-2914943439fcEnglishSymplectic Elements at OxfordElsevier2017Matsiaka, OPenington, CBaker, RSimpson, MCell migration within tissues involves the interaction of many cells from distinct subpopulations. In this work, we present a discrete model of collective cell migration where the motion of individual cells is driven by random forces, short range repulsion forces to mimic crowding, and longer range attraction forces to mimic adhesion. This discrete model can be used to simulate a population of cells that is composed of K ≥ 1 distinct subpopulations. To analyse the discrete model we formulate a hierarchy of moment equations that describe the spatial evolution of the density of agents, pairs of agents, triplets of agents, and so forth. To solve the hierarchy of moment equations we introduce two forms of closure: (i) the mean field approximation, which effectively assumes that the distributions of individual agents are independent; and (ii) a moment dynamics description that is based on the Kirkwood superposition approximation. The moment dynamics description provides an approximate way of incorporating spatial patterns, such as agent clustering, into the continuum description. Comparing the performance of the two continuum descriptions confirms that both perform well when adhesive forces are sufficiently weak. In contrast, the moment dynamics description outperforms the mean field model when adhesive forces are sufficiently large. This is a first attempt to provide an accurate continuum description of a lattice-free, multi-species model of collective cell migration.
spellingShingle Matsiaka, O
Penington, C
Baker, R
Simpson, M
Continuum approximations for lattice-free multi-species models of collective cell migration
title Continuum approximations for lattice-free multi-species models of collective cell migration
title_full Continuum approximations for lattice-free multi-species models of collective cell migration
title_fullStr Continuum approximations for lattice-free multi-species models of collective cell migration
title_full_unstemmed Continuum approximations for lattice-free multi-species models of collective cell migration
title_short Continuum approximations for lattice-free multi-species models of collective cell migration
title_sort continuum approximations for lattice free multi species models of collective cell migration
work_keys_str_mv AT matsiakao continuumapproximationsforlatticefreemultispeciesmodelsofcollectivecellmigration
AT peningtonc continuumapproximationsforlatticefreemultispeciesmodelsofcollectivecellmigration
AT bakerr continuumapproximationsforlatticefreemultispeciesmodelsofcollectivecellmigration
AT simpsonm continuumapproximationsforlatticefreemultispeciesmodelsofcollectivecellmigration