Traveling Pulses for a Two-Species Chemotaxis Model.

Mathematical models have been widely used to describe the collective movement of bacteria by chemotaxis. In particular, bacterial concentration waves traveling in a narrow channel have been experimentally observed and can be precisely described thanks to a mathematical model at the macroscopic scale...

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Main Authors: Casimir Emako, Charlène Gayrard, Axel Buguin, Luís Neves de Almeida, Nicolas Vauchelet
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2016-04-01
Series:PLoS Computational Biology
Online Access:http://europepmc.org/articles/PMC4829188?pdf=render
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spelling doaj-558691e7201741c1995227a99ce1ec6c2020-11-25T01:52:56ZengPublic Library of Science (PLoS)PLoS Computational Biology1553-734X1553-73582016-04-01124e100484310.1371/journal.pcbi.1004843Traveling Pulses for a Two-Species Chemotaxis Model.Casimir EmakoCharlène GayrardAxel BuguinLuís Neves de AlmeidaNicolas VaucheletMathematical models have been widely used to describe the collective movement of bacteria by chemotaxis. In particular, bacterial concentration waves traveling in a narrow channel have been experimentally observed and can be precisely described thanks to a mathematical model at the macroscopic scale. Such model was derived in [1] using a kinetic model based on an accurate description of the mesoscopic run-and-tumble process. We extend this approach to study the behavior of the interaction between two populations of E. Coli. Separately, each population travels with its own speed in the channel. When put together, a synchronization of the speed of the traveling pulses can be observed. We show that this synchronization depends on the fraction of the fast population. Our approach is based on mathematical analysis of a macroscopic model of partial differential equations. Numerical simulations in comparison with experimental observations show qualitative agreement.http://europepmc.org/articles/PMC4829188?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Casimir Emako
Charlène Gayrard
Axel Buguin
Luís Neves de Almeida
Nicolas Vauchelet
spellingShingle Casimir Emako
Charlène Gayrard
Axel Buguin
Luís Neves de Almeida
Nicolas Vauchelet
Traveling Pulses for a Two-Species Chemotaxis Model.
PLoS Computational Biology
author_facet Casimir Emako
Charlène Gayrard
Axel Buguin
Luís Neves de Almeida
Nicolas Vauchelet
author_sort Casimir Emako
title Traveling Pulses for a Two-Species Chemotaxis Model.
title_short Traveling Pulses for a Two-Species Chemotaxis Model.
title_full Traveling Pulses for a Two-Species Chemotaxis Model.
title_fullStr Traveling Pulses for a Two-Species Chemotaxis Model.
title_full_unstemmed Traveling Pulses for a Two-Species Chemotaxis Model.
title_sort traveling pulses for a two-species chemotaxis model.
publisher Public Library of Science (PLoS)
series PLoS Computational Biology
issn 1553-734X
1553-7358
publishDate 2016-04-01
description Mathematical models have been widely used to describe the collective movement of bacteria by chemotaxis. In particular, bacterial concentration waves traveling in a narrow channel have been experimentally observed and can be precisely described thanks to a mathematical model at the macroscopic scale. Such model was derived in [1] using a kinetic model based on an accurate description of the mesoscopic run-and-tumble process. We extend this approach to study the behavior of the interaction between two populations of E. Coli. Separately, each population travels with its own speed in the channel. When put together, a synchronization of the speed of the traveling pulses can be observed. We show that this synchronization depends on the fraction of the fast population. Our approach is based on mathematical analysis of a macroscopic model of partial differential equations. Numerical simulations in comparison with experimental observations show qualitative agreement.
url http://europepmc.org/articles/PMC4829188?pdf=render
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AT luisnevesdealmeida travelingpulsesforatwospecieschemotaxismodel
AT nicolasvauchelet travelingpulsesforatwospecieschemotaxismodel
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