DocumentCode :
3313496
Title :
Two-dimensional simulation of the deformation of a model endothelial cell in a laminar flow
Author :
Wang, X. ; Wache, P. ; Maurice, G. ; Muller, S. ; Lucius, M. ; Stoltz, J.F.
Author_Institution :
Fac. of Med., CNRS, Vandoeuvre-les-Nancy, France
Volume :
2
fYear :
1999
fDate :
36434
Abstract :
In this work a numerical simulation of the deformation of a model endothelial cell (EC) in a laminar flow was presented. The EC was considered as a two-dimensional isotropic elastic material with a less deformable nucleus. It was supposed that identical cells were aligned in a regular way to form an infinite monolayer. Thus the flow near the monolayer would be periodic and the authors could consider only the flow above one cell by imposing periodic boundary conditions into numerical computations. The equations governing the flow and the equilibrium of the cell were solved by using the finite element method. An interface between the computations of the fluid flow and the solid deformation was created such that the flow induced stresses on the cell surface could be used as solid boundary conditions and that deformed cell shape could be introduced into flow computation. The numerical results showed that cell deformation under flow depends largely on Reynolds number and the Young´s modulus of the cell and the nucleus. The distributions of mechanical stresses on cell surface were modified compared to a non deformable cell. The maximum values of shear stress and pressure were lowered. This modeling indicates that it would be interesting to study eventual correlation between the distribution of mechanical stresses and that of biological receptors which could allow a better understanding of the leukocyte adhesion on endothelium
Keywords :
Young´s modulus; cellular biophysics; finite element analysis; haemorheology; laminar flow; monolayers; physiological models; Reynolds number; biological receptors; deformed cell shape; flow computation; flow near monolayer; fluid flow; leukocyte adhesion; mechanical stresses distribution; model endothelial cell deformation; numerical simulation; periodic boundary conditions; solid boundary conditions; solid deformation; two-dimensional simulation; white blood cells; Boundary conditions; Computer interfaces; Deformable models; Equations; Finite element methods; Fluid flow; Numerical simulation; Shape; Solids; Stress;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
[Engineering in Medicine and Biology, 1999. 21st Annual Conference and the 1999 Annual Fall Meetring of the Biomedical Engineering Society] BMES/EMBS Conference, 1999. Proceedings of the First Joint
Conference_Location :
Atlanta, GA
ISSN :
1094-687X
Print_ISBN :
0-7803-5674-8
Type :
conf
DOI :
10.1109/IEMBS.1999.804512
Filename :
804512
Link To Document :
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