Mathematical modelling of mechanisms for biofilm expansion

Biofilms are multi-cellular communities of microorganisms attached to surfaces. It has been estimated that about 99% of all bacteria exist in biofilm. Thus to understand the critical role bacteria play in natural and man-made ecosystems, requires a better knowledge of these multi-cellular communitie...

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Main Author: Li, Laoshen
Other Authors: Davidson, Fordyce A.
Published: University of Dundee 2014
Subjects:
579
Online Access:https://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.642905
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spelling ndltd-bl.uk-oai-ethos.bl.uk-6429052019-01-29T03:24:06ZMathematical modelling of mechanisms for biofilm expansionLi, LaoshenDavidson, Fordyce A.2014Biofilms are multi-cellular communities of microorganisms attached to surfaces. It has been estimated that about 99% of all bacteria exist in biofilm. Thus to understand the critical role bacteria play in natural and man-made ecosystems, requires a better knowledge of these multi-cellular communities. Biofilms are complex structures comprising cells embedded in a sticky material composed of extracellular polymeric substances (EPS) produced by the cells themselves. The physical structure of the biofilm has been shown to be important to its evolutionary success. EPS is involved in maintaining structural integrity of the biofilm and protects the embedded bacterial cells from adverse elements in the environment. It is known that the morphology and growth rate of biofilms are controlled by a number of factors including environmental conditions and the expression of particular genes. The aim of this thesis was to better understand the links between physical and genetic mechanisms that underpin the function of the EPS matrix. In this thesis, we investigate role of EPS in the structure and development of the biofilm. We do this by adopting an interdisciplinary approach that combines mathematical modelling and analysis, numerical simulation and laboratory experiments. First, we investigate cross-diffusion processes between the cells and the EPS matrix to establish whether structure is mediated in this manner. Then, we study the hypothesis that the cells dominate the growth dynamics in the biofilm, i.e. expansion and structure is determined by cell growth and division. Next, we investigate the hypothesis that the matrix dominates and biofilm expansion is determined by water uptake. Finally, we compare these results to our experimental observations.579University of Dundeehttps://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.642905https://discovery.dundee.ac.uk/en/studentTheses/c86dd46a-acf9-48a1-9e4f-11bcca0b778fElectronic Thesis or Dissertation
collection NDLTD
sources NDLTD
topic 579
spellingShingle 579
Li, Laoshen
Mathematical modelling of mechanisms for biofilm expansion
description Biofilms are multi-cellular communities of microorganisms attached to surfaces. It has been estimated that about 99% of all bacteria exist in biofilm. Thus to understand the critical role bacteria play in natural and man-made ecosystems, requires a better knowledge of these multi-cellular communities. Biofilms are complex structures comprising cells embedded in a sticky material composed of extracellular polymeric substances (EPS) produced by the cells themselves. The physical structure of the biofilm has been shown to be important to its evolutionary success. EPS is involved in maintaining structural integrity of the biofilm and protects the embedded bacterial cells from adverse elements in the environment. It is known that the morphology and growth rate of biofilms are controlled by a number of factors including environmental conditions and the expression of particular genes. The aim of this thesis was to better understand the links between physical and genetic mechanisms that underpin the function of the EPS matrix. In this thesis, we investigate role of EPS in the structure and development of the biofilm. We do this by adopting an interdisciplinary approach that combines mathematical modelling and analysis, numerical simulation and laboratory experiments. First, we investigate cross-diffusion processes between the cells and the EPS matrix to establish whether structure is mediated in this manner. Then, we study the hypothesis that the cells dominate the growth dynamics in the biofilm, i.e. expansion and structure is determined by cell growth and division. Next, we investigate the hypothesis that the matrix dominates and biofilm expansion is determined by water uptake. Finally, we compare these results to our experimental observations.
author2 Davidson, Fordyce A.
author_facet Davidson, Fordyce A.
Li, Laoshen
author Li, Laoshen
author_sort Li, Laoshen
title Mathematical modelling of mechanisms for biofilm expansion
title_short Mathematical modelling of mechanisms for biofilm expansion
title_full Mathematical modelling of mechanisms for biofilm expansion
title_fullStr Mathematical modelling of mechanisms for biofilm expansion
title_full_unstemmed Mathematical modelling of mechanisms for biofilm expansion
title_sort mathematical modelling of mechanisms for biofilm expansion
publisher University of Dundee
publishDate 2014
url https://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.642905
work_keys_str_mv AT lilaoshen mathematicalmodellingofmechanismsforbiofilmexpansion
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