Feedback Control Architecture and the Bacterial Chemotaxis Network

dc.contributor.authorHamadeh, Abdullah
dc.contributor.authorRoberts, Mark A.J.
dc.contributor.authorAugust, Elias
dc.contributor.authorMcSharry, Patrick E.
dc.contributor.authorMaini, Philip K.
dc.contributor.authorArmitage, Judith P.
dc.contributor.authorPapachristodoulou, Antonis
dc.contributor.departmentDepartment of Engineering
dc.date.accessioned2026-09-03T10:28:00Z
dc.date.available2026-09-03T10:28:00Z
dc.date.issued2011-05
dc.description.abstractBacteria move towards favourable and away from toxic environments by changing their swimming pattern. This response is regulated by the chemotaxis signalling pathway, which has an important feature: it uses feedback to 'reset' (adapt) the bacterial sensing ability, which allows the bacteria to sense a range of background environmental changes. The role of this feedback has been studied extensively in the simple chemotaxis pathway of Escherichia coli. However it has been recently found that the majority of bacteria have multiple chemotaxis homologues of the E. coli proteins, resulting in more complex pathways. In this paper we investigate the configuration and role of feedback in Rhodobacter sphaeroides, a bacterium containing multiple homologues of the chemotaxis proteins found in E. coli. Multiple proteins could produce different possible feedback configurations, each having different chemotactic performance qualities and levels of robustness to variations and uncertainties in biological parameters and to intracellular noise. We develop four models corresponding to different feedback configurations. Using a series of carefully designed experiments we discriminate between these models and invalidate three of them. When these models are examined in terms of robustness to noise and parametric uncertainties, we find that the non-invalidated model is superior to the others. Moreover, it has a 'cascade control' feedback architecture which is used extensively in engineering to improve system performance, including robustness. Given that the majority of bacteria are known to have multiple chemotaxis pathways, in this paper we show that some feedback architectures allow them to have better performance than others. In particular, cascade control may be an important feature in achieving robust functionality in more complex signalling pathways and in improving their performance.en
dc.description.versionPeer revieweden
dc.format.extent1571017
dc.format.extent
dc.identifier.citationHamadeh, A, Roberts, M A J, August, E, McSharry, P E, Maini, P K, Armitage, J P & Papachristodoulou, A 2011, 'Feedback Control Architecture and the Bacterial Chemotaxis Network', PLoS Computational Biology, vol. 7, no. 5, e1001130. https://doi.org/10.1371/journal.pcbi.1001130en
dc.identifier.doi10.1371/journal.pcbi.1001130
dc.identifier.issn1553-734X
dc.identifier.other250724168
dc.identifier.otherc4ef1a56-6820-4bc4-b4e1-e80c9ff4d50d
dc.identifier.other79958167054
dc.identifier.other21573199
dc.identifier.urihttps://hdl.handle.net/20.500.11815/8169
dc.language.isoen
dc.relation.ispartofseriesPLoS Computational Biology; 7(5)en
dc.relation.urlhttps://www.scopus.com/pages/publications/79958167054en
dc.rightsinfo:eu-repo/semantics/openAccessen
dc.subjectEcology, Evolution, Behavior and Systematicsen
dc.subjectEcologyen
dc.subjectModeling and Simulationen
dc.subjectMolecular Biologyen
dc.subjectGeneticsen
dc.subjectCellular and Molecular Neuroscienceen
dc.subjectComputational Theory and Mathematicsen
dc.titleFeedback Control Architecture and the Bacterial Chemotaxis Networken
dc.type/dk/atira/pure/researchoutput/researchoutputtypes/contributiontojournal/articleen

Skrár

Original bundle

Niðurstöður 1 - 1 af 1
Nafn:
file.pdf
Stærð:
1.5 MB
Snið:
Adobe Portable Document Format