Please use this identifier to cite or link to this item: http://hdl.handle.net/1942/39800
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dc.contributor.authorAhmed, Riham K.-
dc.contributor.authorAbdalrahman, Tamer-
dc.contributor.authorDavies, Neil H.-
dc.contributor.authorVERMOLEN, Fred-
dc.contributor.authorFranz, Thomas-
dc.date.accessioned2023-03-21T13:43:36Z-
dc.date.available2023-03-21T13:43:36Z-
dc.date.issued2023-
dc.date.submitted2023-03-16T16:10:01Z-
dc.identifier.citationBiomechanics and Modeling in Mechanobiology, 22, p. 809-824-
dc.identifier.urihttp://hdl.handle.net/1942/39800-
dc.description.abstractCells mechanically interact with their environment to sense, for example, topography, elasticity and mechanical cues from other cells. Mechano-sensing has profound effects on cellular behaviour, including motility. The current study aims to develop a mathematical model of cellular mechano-sensing on planar elastic substrates and demonstrate the model's predictive capabilities for the motility of individual cells in a colony. In the model, a cell is assumed to transmit an adhesion force, derived from a dynamic focal adhesion integrin density, that locally deforms a substrate, and to sense substrate deformation originating from neighbouring cells. The substrate deformation from multiple cells is expressed as total strain energy density with a spatially varying gradient. The magnitude and direction of the gradient at the cell location define the cell motion. Cell-substrate friction, partial motion randomness, and cell death and division are included. The substrate deformation by a single cell and the motility of two cells are presented for several substrate elasticities and thicknesses. The collective motility of 25 cells on a uniform substrate mimicking the closure of a circular wound of 200 mu m is predicted for deterministic and random motion. Cell motility on substrates with varying elasticity and thickness is explored for four cells and 15 cells, the latter again mimicking wound closure. Wound closure by 45 cells is used to demonstrate the simulation of cell death and division during migration. The mathematical model can adequately simulate the mechanically induced collective cell motility on planar elastic substrates. The model is suitable for extension to other cell and substrates shapes and the inclusion of chemotactic cues, offering the potential to complement in vitro and in vivo studies.-
dc.description.sponsorshipThe research reported in this publication is supported fnancially by the Organization for Women in Science for the Developing World (doctoral scholarship to RA), the European Mathematical Society (collaborative research visit award to RA), the South African Medical Research Council (grant SIR 328148 to TF), and the National Research Foundation of South Africa (grants UID92531 and CPRR14071676206 to TF). The funders had no role in study design, data collection and analysis, decision to publish, or preparation of the manuscript. Any opinion, fndings, conclusions and recommendations expressed in this publication are those of the authors, and therefore, the funders do not accept any liability.-
dc.language.isoen-
dc.publisherSPRINGER HEIDELBERG-
dc.rightsThe Author(s), under exclusive licence to Springer-Verlag GmbH Germany, part of Springer Nature 2023-
dc.subject.otherCell migration-
dc.subject.otherCellular traction force-
dc.subject.otherSubstrate deformation-
dc.subject.otherStrain energy density-
dc.titleMathematical model of mechano-sensing and mechanically induced collective motility of cells on planar elastic substrates-
dc.typeJournal Contribution-
dc.identifier.epage824-
dc.identifier.spage809-
dc.identifier.volume22-
local.format.pages16-
local.bibliographicCitation.jcatA1-
dc.description.notesAhmed, RK (corresponding author), Univ Cape Town, Biomed Engn Res Ctr, Dept Human Biol, Div Biomed Engn,Observ, Cape Town, South Africa.-
dc.description.notesr.ahmed@aims.edu.gh-
local.publisher.placeTIERGARTENSTRASSE 17, D-69121 HEIDELBERG, GERMANY-
local.type.refereedRefereed-
local.type.specifiedArticle-
dc.identifier.doi10.1007/s10237-022-01682-2-
dc.identifier.pmid36814004-
dc.identifier.isi000934696500001-
dc.contributor.orcidVermolen, Fred/0000-0003-2212-1711; Davies, Neil/0000-0003-0432-4515;-
dc.contributor.orcidAhmed, Riham/0000-0003-1384-095X; Franz, Thomas/0000-0002-1504-3842-
local.provider.typewosris-
local.description.affiliation[Ahmed, Riham K.; Abdalrahman, Tamer; Franz, Thomas] Univ Cape Town, Biomed Engn Res Ctr, Dept Human Biol, Div Biomed Engn,Observ, Cape Town, South Africa.-
local.description.affiliation[Abdalrahman, Tamer] Charite, Julius Wolff Inst Biomech & Musculoskeletal Regene, Computat Mechanobiol, Berlin, Germany.-
local.description.affiliation[Davies, Neil H.] Univ Cape Town, Chris Barnard Div Cardiothorac Surg, Cardiovasc Res Unit, MRC IUCHRU,Observ, Cape Town, South Africa.-
local.description.affiliation[Vermolen, Fred] Univ Hasselt, Dept Math & Stat, Computat Math Grp, Diepenbeek, Belgium.-
local.description.affiliation[Franz, Thomas] Univ Southampton, Fac Engn & Phys Sci, Bioengn Sci Res Grp, Southampton, England.-
local.dataset.doi10.25375/uct.17620877-
local.uhasselt.internationalyes-
item.contributorAhmed, Riham K.-
item.contributorAbdalrahman, Tamer-
item.contributorDavies, Neil H.-
item.contributorVERMOLEN, Fred-
item.contributorFranz, Thomas-
item.accessRightsOpen Access-
item.fullcitationAhmed, Riham K.; Abdalrahman, Tamer; Davies, Neil H.; VERMOLEN, Fred & Franz, Thomas (2023) Mathematical model of mechano-sensing and mechanically induced collective motility of cells on planar elastic substrates. In: Biomechanics and Modeling in Mechanobiology, 22, p. 809-824.-
item.fulltextWith Fulltext-
crisitem.journal.issn1617-7959-
crisitem.journal.eissn1617-7940-
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