Effects of intrinsic stochasticity on delayed reaction-diffusion patterning systems

Cellular gene expression is a complex process involving many steps, including the transcription of DNA and translation of mRNA; hence the synthesis of proteins requires a considerable amount of time, from ten minutes to several hours. Since diffusion-driven instability has been observed to be sensit...

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Main Authors: Woolley, T, Baker, R, Gaffney, E, Maini, P, Seirin Lee, S
Formato: Journal article
Publicado em: American Physical Society 2012
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author Woolley, T
Baker, R
Gaffney, E
Maini, P
Seirin Lee, S
author_facet Woolley, T
Baker, R
Gaffney, E
Maini, P
Seirin Lee, S
author_sort Woolley, T
collection OXFORD
description Cellular gene expression is a complex process involving many steps, including the transcription of DNA and translation of mRNA; hence the synthesis of proteins requires a considerable amount of time, from ten minutes to several hours. Since diffusion-driven instability has been observed to be sensitive to perturbations in kinetic delays, the application of Turing patterning mechanisms to the problem of producing spatially heterogeneous differential gene expression has been questioned. In deterministic systems a small delay in the reactions can cause a large increase in the time it takes a system to pattern. Recently, it has been observed that in undelayed systems intrinsic stochasticity can cause pattern initiation to occur earlier than in the analogous deterministic simulations. Here we are interested in adding both stochasticity and delays to Turing systems in order to assess whether stochasticity can reduce the patterning time scale in delayed Turing systems. As analytical insights to this problem are difficult to attain and often limited in their use, we focus on stochastically simulating delayed systems. We consider four different Turing systems and two different forms of delay. Our results are mixed and lead to the conclusion that, although the sensitivity to delays in the Turing mechanism is not completely removed by the addition of intrinsic noise, the effects of the delays are clearly ameliorated in certain specific cases.
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spelling oxford-uuid:7e2dc7e2-db33-4d46-9c64-50e222511d422022-03-26T21:08:38ZEffects of intrinsic stochasticity on delayed reaction-diffusion patterning systemsJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:7e2dc7e2-db33-4d46-9c64-50e222511d42Mathematical Institute - ePrintsAmerican Physical Society2012Woolley, TBaker, RGaffney, EMaini, PSeirin Lee, SCellular gene expression is a complex process involving many steps, including the transcription of DNA and translation of mRNA; hence the synthesis of proteins requires a considerable amount of time, from ten minutes to several hours. Since diffusion-driven instability has been observed to be sensitive to perturbations in kinetic delays, the application of Turing patterning mechanisms to the problem of producing spatially heterogeneous differential gene expression has been questioned. In deterministic systems a small delay in the reactions can cause a large increase in the time it takes a system to pattern. Recently, it has been observed that in undelayed systems intrinsic stochasticity can cause pattern initiation to occur earlier than in the analogous deterministic simulations. Here we are interested in adding both stochasticity and delays to Turing systems in order to assess whether stochasticity can reduce the patterning time scale in delayed Turing systems. As analytical insights to this problem are difficult to attain and often limited in their use, we focus on stochastically simulating delayed systems. We consider four different Turing systems and two different forms of delay. Our results are mixed and lead to the conclusion that, although the sensitivity to delays in the Turing mechanism is not completely removed by the addition of intrinsic noise, the effects of the delays are clearly ameliorated in certain specific cases.
spellingShingle Woolley, T
Baker, R
Gaffney, E
Maini, P
Seirin Lee, S
Effects of intrinsic stochasticity on delayed reaction-diffusion patterning systems
title Effects of intrinsic stochasticity on delayed reaction-diffusion patterning systems
title_full Effects of intrinsic stochasticity on delayed reaction-diffusion patterning systems
title_fullStr Effects of intrinsic stochasticity on delayed reaction-diffusion patterning systems
title_full_unstemmed Effects of intrinsic stochasticity on delayed reaction-diffusion patterning systems
title_short Effects of intrinsic stochasticity on delayed reaction-diffusion patterning systems
title_sort effects of intrinsic stochasticity on delayed reaction diffusion patterning systems
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