Show simple item record

dc.contributor.author
 hal.structure.identifier
ALLENA, Rachele
99538 Laboratoire de biomécanique [LBM]
dc.contributor.author
 hal.structure.identifier
MAINI, Philip
167451 Centre for Mathematical Biology, Mathematical Institute
dc.date.accessioned2014
dc.date.available2014
dc.date.issued2014
dc.date.submitted2014
dc.identifier.issn0092-8240
dc.identifier.urihttp://hdl.handle.net/10985/9123
dc.description.abstractCollective cell migration plays a fundamental role in many biological phenomena such as immune response, embryogenesis and tumorigenesis. In the present work, we propose a reaction–diffusion finite element model of the lateral line primordium migration in zebrafish. The population is modelled as a continuum with embedded discrete motile cells, which are assumed to be viscoelastic and able to undergo large deformations. The Wnt/ß-catenin–FGF and cxcr4b–cxcr7b signalling pathways inside the cohort regulating the migration are described through coupled reaction–diffusion equations. The coupling between mechanics and the molecular scenario occurs in two ways. Firstly, the intensity of the protrusion–contraction movement of the cells depends on the cxcr4b concentration. Secondly, the intra-synchronization between the active deformations and the adhesion forces inside each cell is triggered by the cxcr4b–cxcr7b polarity. This influences the inter-synchronization between the cells and results in two main modes of migration: uncoordinated and coordinated. The main objectives of the work were (i) to validate our assumptions with respect to the experimental observations and (ii) to decipher the mechanical conditions leading to efficient migration of the primordium. To achieve the second goal, we will specifically focus on the role of the leader cells and their position inside the population.
dc.language.isoen
dc.publisherSpringer Verlag
dc.rightsPost-print
dc.subjectCollective migration
dc.subjectContinuum mechanics
dc.subjectReaction–diffusion equation
dc.subjectCell leadership
dc.titleReaction–Diffusion Finite Element Model of Lateral Line Primordium Migration to Explore Cell Leadership
dc.identifier.doi10.1007/s11538-014-0043-7
dc.typdocArticle dans une revue avec comité de lecture
dc.localisationCentre de Paris
dc.subject.halSciences de l'ingénieur: Mécanique: Biomécanique
dc.subject.halSciences du vivant: ingénierie bio-médicale
ensam.audienceInternationale
ensam.page3028-3050
ensam.journalBulletin of Mathematical Biology
ensam.volume76
ensam.issue12
hal.identifierhal-01096997
hal.version1
hal.statusaccept
dc.identifier.eissn1522-9602


Files in this item

Thumbnail

This item appears in the following Collection(s)

Show simple item record