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Coupled CFD-DEM modeling to predict how EPS affects bacterial biofilm deformation, recovery and detachment under flow conditions.
Xia, Yuqing; Jayathilake, Pahala G; Li, Bowen; Zuliani, Paolo; Deehan, David; Longyear, Jennifer; Stoodley, Paul; Chen, Jinju.
Afiliación
  • Xia Y; School of Engineering, Newcastle University, Newcastle upon Tyne, UK.
  • Jayathilake PG; Department of Oncology, University of Oxford, Oxford, UK.
  • Li B; School of Computing, Newcastle University, Newcastle upon Tyne, UK.
  • Zuliani P; School of Computing, Newcastle University, Newcastle upon Tyne, UK.
  • Deehan D; The Medical School, Newcastle University, Newcastle upon Tyne, UK.
  • Longyear J; Department of Orthopaedics, Freeman Hospital, Newcastle upon Tyne, UK.
  • Stoodley P; Marin, Protective, and Yacht Coatings, AkzoNobel, Gateshead, UK.
  • Chen J; Department of Microbial Infection and Immunity and the Department of Orthopaedics, The Ohio State University, Columbus, Ohio, USA.
Biotechnol Bioeng ; 119(9): 2551-2563, 2022 09.
Article en En | MEDLINE | ID: mdl-35610631
ABSTRACT
The deformation and detachment of bacterial biofilm are related to the structural and mechanical properties of the biofilm itself. Extracellular polymeric substances (EPS) play an important role on keeping the mechanical stability of biofilms. The understanding of biofilm mechanics and detachment can help to reveal biofilm survival mechanisms under fluid shear and provide insight about what flows might be needed to remove biofilm in a cleaning cycle or for a ship to remove biofilms. However, how the EPS may affect biofilm mechanics and its deformation in flow conditions remains elusive. To address this, a coupled computational fluid dynamic- discrete element method (CFD-DEM) model was developed. The mechanisms of biofilm detachment, such as erosion and sloughing have been revealed by imposing hydrodynamic fluid flow at different velocities and loading rates. The model, which also allows adjustment of the proportion of different functional groups of microorganisms in the biofilm, enables the study of the contribution of EPS toward biofilm resistance to fluid shear stress. Furthermore, the stress-strain curves during biofilm deformation have been captured by loading and unloading fluid shear stress to study the viscoelastic properties of the biofilm. Our predicted emergent viscoelastic properties of biofilms were consistent with relevant experimental measurements.
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Texto completo: 1 Bases de datos: MEDLINE Asunto principal: Biopelículas / Matriz Extracelular de Sustancias Poliméricas Tipo de estudio: Prognostic_studies / Risk_factors_studies Idioma: En Revista: Biotechnol Bioeng Año: 2022 Tipo del documento: Article País de afiliación: Reino Unido

Texto completo: 1 Bases de datos: MEDLINE Asunto principal: Biopelículas / Matriz Extracelular de Sustancias Poliméricas Tipo de estudio: Prognostic_studies / Risk_factors_studies Idioma: En Revista: Biotechnol Bioeng Año: 2022 Tipo del documento: Article País de afiliación: Reino Unido