Pattern formation in reaction-diffusion models with nonuniform growth

Recent examples of biological pattern formation where a pattern changes qualitatively as the underlying domain grows have given rise to renewed interest in the reaction-diffusion (Turing) model for pattern formation. Several authors have now reported studies showing that with the addition of domain...

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المؤلفون الرئيسيون: Crampin, E, Hackborn, W, Maini, P
التنسيق: Journal article
منشور في: 2002
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author Crampin, E
Hackborn, W
Maini, P
author_facet Crampin, E
Hackborn, W
Maini, P
author_sort Crampin, E
collection OXFORD
description Recent examples of biological pattern formation where a pattern changes qualitatively as the underlying domain grows have given rise to renewed interest in the reaction-diffusion (Turing) model for pattern formation. Several authors have now reported studies showing that with the addition of domain growth the Turing model can generate sequences of patterns consistent with experimental observations. These studies demonstrate the tendency for the symmetrical splitting or insertion of concentration peaks in response to domain growth. This process has also been suggested as a mechanism for reliable pattern selection. However, thus far authors have only considered the restricted case where growth is uniform throughout the domain. In this paper we generalize our recent results for reaction-diffusion pattern formation on growing domains to consider the effects of spatially nonuniform growth. The purpose is twofold: firstly to demonstrate that the addition of weak spatial heterogeneity does not significantly alter pattern selection from the uniform case, but secondly that sufficiently strong nonuniformity, for example where only a restricted part of the domain is growing, can give rise to sequences of patterns not seen for the uniform case, giving a further mechanism for controlling pattern selection. A framework for modelling is presented in which domain expansion and boundary (apical) growth are unified in a consistent manner. The results have implications for all reaction-diffusion type models subject to underlying domain growth.
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spelling oxford-uuid:fc3be907-b798-49fb-86db-670a173e8df32022-03-27T13:19:20ZPattern formation in reaction-diffusion models with nonuniform growthJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:fc3be907-b798-49fb-86db-670a173e8df3Mathematical Institute - ePrints2002Crampin, EHackborn, WMaini, PRecent examples of biological pattern formation where a pattern changes qualitatively as the underlying domain grows have given rise to renewed interest in the reaction-diffusion (Turing) model for pattern formation. Several authors have now reported studies showing that with the addition of domain growth the Turing model can generate sequences of patterns consistent with experimental observations. These studies demonstrate the tendency for the symmetrical splitting or insertion of concentration peaks in response to domain growth. This process has also been suggested as a mechanism for reliable pattern selection. However, thus far authors have only considered the restricted case where growth is uniform throughout the domain. In this paper we generalize our recent results for reaction-diffusion pattern formation on growing domains to consider the effects of spatially nonuniform growth. The purpose is twofold: firstly to demonstrate that the addition of weak spatial heterogeneity does not significantly alter pattern selection from the uniform case, but secondly that sufficiently strong nonuniformity, for example where only a restricted part of the domain is growing, can give rise to sequences of patterns not seen for the uniform case, giving a further mechanism for controlling pattern selection. A framework for modelling is presented in which domain expansion and boundary (apical) growth are unified in a consistent manner. The results have implications for all reaction-diffusion type models subject to underlying domain growth.
spellingShingle Crampin, E
Hackborn, W
Maini, P
Pattern formation in reaction-diffusion models with nonuniform growth
title Pattern formation in reaction-diffusion models with nonuniform growth
title_full Pattern formation in reaction-diffusion models with nonuniform growth
title_fullStr Pattern formation in reaction-diffusion models with nonuniform growth
title_full_unstemmed Pattern formation in reaction-diffusion models with nonuniform growth
title_short Pattern formation in reaction-diffusion models with nonuniform growth
title_sort pattern formation in reaction diffusion models with nonuniform growth
work_keys_str_mv AT crampine patternformationinreactiondiffusionmodelswithnonuniformgrowth
AT hackbornw patternformationinreactiondiffusionmodelswithnonuniformgrowth
AT mainip patternformationinreactiondiffusionmodelswithnonuniformgrowth