A bulk-surface mechanobiochemical modelling approach for single cell migration in two-space dimensions

dc.contributor.authorHernandez-Aristizabal, David
dc.contributor.authorGarzon-Alvarado, Diego-Alexander
dc.contributor.authorDuque-Daza, Carlos-Alberto
dc.contributor.authorMadzvamuse, Anotida
dc.date.accessioned2025-01-24T09:37:21Z
dc.date.available2025-01-24T09:37:21Z
dc.date.issued2024-12
dc.description.abstractIn this work, we present a mechanobiochemical model for two-dimensional cell migration which couples mechanical properties of the cell cytosol with biochemical processes taking place near or on the cell plasma membrane. The modelling approach is based on a recently developed mathematical formalism of evolving bulksurface partial differential equations of reaction–diffusion type. We solve these equations using finite element methods within a moving-mesh framework derived from the weak formulation of the evolving bulk-surface PDEs. In the present work, the cell cytosol interior (bulk) dynamics are coupled to the cell membrane (surface) dynamics through non-homogeneous Dirichlet boundary conditions. The modelling approach exhibits both directed cell migration in response to chemical cues as well as spontaneous migration in the absence of such cues. As a by-product, the approach shows fundamental characteristics associated with single cell migration such as: (i) cytosolic and membrane polarisation, (ii) actin dependent protrusions, and (iii) continuous shape deformation of the cell during migration. Cell migration is an ubiquitous process in life that is mainly triggered by the dynamics of the actin cytoskeleton and therefore is driven by both mechanical and biochemical processes. It is a multistep process essential for mammalian organisms and is closely linked to a vast diversity of processes; from embryonic development to cancer invasion. Experimental, theoretical and computational studies have been key to elucidate the mechanisms underlying cell migration. On one hand, rapid advances in experimental techniques allow for detailed experimental measurements of cell migration pathways, while, on the other, computational approaches allow for the modelling, analysis and understanding of such observations. The bulk-surface mechanobiochemical modelling approach presented in this work, set premises to study single cell migration through complex non-isotropic environments in two- and three-space dimensions.en_US
dc.description.departmentMathematics and Applied Mathematicsen_US
dc.description.librarianam2024en_US
dc.description.sdgSDG-15:Life on landen_US
dc.description.sponsorshipThe Universidad Nacional de Colombia, Colombia; the University of Sussex; the EPSRC, United Kingdom grant; the European Union Horizon 2020 research and innovation programme, UK under a Marie Sklodowska-Curie grant; the Commission for Developing Countries, IMU; the Simons Foundation; the Royal Society Wolfson Research MeritAward) funded the Wolfson Foundation, United Kingdom.en_US
dc.description.urihttps://www.elsevier.com/locate/yjtbien_US
dc.identifier.citationHernandez-Aristizabal, D., Garzon-Alvarado, D.-A., Duque-Daza, C.-A. et al. 2024, 'A bulk-surface mechanobiochemical modelling approach for single cell migration in two-space dimensions',Journal of Theoretical Biology, vol. 595, no. 111966, pp. 1-18. https://DOI.org/10.1016/j.jtbi.2024.111966.en_US
dc.identifier.issn0022-5193
dc.identifier.other10.1016/j.jtbi.2024.111966
dc.identifier.urihttp://hdl.handle.net/2263/100291
dc.language.isoenen_US
dc.publisherElsevieren_US
dc.rights© 2024 The Authors. This is an open access article under the CC BY license.en_US
dc.subjectBulk-surface partial differential equationsen_US
dc.subjectBulk-surface reaction–diffusionen_US
dc.subjectBulk-surface finite element methoden_US
dc.subjectALE-moving mesh methodsen_US
dc.subjectCell migrationen_US
dc.subjectCell motilityen_US
dc.subjectMechanobiochemical modellingen_US
dc.subjectMoving-mesh methoden_US
dc.subjectBulk-surface moving-mesh finite elementen_US
dc.subjectSDG-15: Life on landen_US
dc.titleA bulk-surface mechanobiochemical modelling approach for single cell migration in two-space dimensionsen_US
dc.typeArticleen_US

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