DocumentCode
386372
Title
Structural optimization analysis of endothelial cell remodeling to fluid flow
Author
Ohashi, T. ; Seo, S. ; Matsumoto, T. ; Sat, M.
Volume
1
fYear
2002
fDate
2002
Abstract
Summary form only given. A finite element analysis using structural optimization method was performed to simulate the remodeling of bovine aortic endothelial cells (BAECs). BAECs showed marked elongation and aligned in the flow direction after exposing to shear stress of 2 Pa for 24 hours. An atomic force microscope (AFM) was used to measure cell surface geometries, showing that the peak cell height decreased significantly from 2.8 ± 1.0 μm (mean ± SD) to 1.4 ± 0.5 μm with fluid flow. The fluorescence images showed that control cells exhibited dense peripheral bands of F-actin filaments, while sheared cells exhibited centrally located F-actin stress fibers parallel to the flow direction. A finite element model was generated on the basis of the cell surface geometries, in which elastic modulus of each element was changed in accordance with an objective stress together with update of cell shape. The results showed that the cell height decreased with fluid flow and the higher elastic modulus appeared in the upstream region of the nucleus in the final step, which may correspond with cytoskeletal structure. The present analysis should be effective for clarifying the remodeling of endothelial cells.
Keywords
atomic force microscopy; blood vessels; cellular biophysics; elastic moduli; finite element analysis; haemorheology; physiological models; proteins; 1.4 micron; 2.8 micron; 24 hr; F-actin filaments; FEM; bovine aortic endothelial cells; cell surface geometries measurement; cellular alignment; cellular elongation; centrally located F-actin stress fibers; cytoskeletal structure; dense peripheral bands; endothelial cell remodeling; flow direction; fluorescence images; nucleus upstream region; peak cell height; shear stress; structural optimization method; Analytical models; Atomic force microscopy; Atomic measurements; Finite element methods; Fluid flow; Force measurement; Geometry; Optimization methods; Performance analysis; Stress;
fLanguage
English
Publisher
ieee
Conference_Titel
Engineering in Medicine and Biology, 2002. 24th Annual Conference and the Annual Fall Meeting of the Biomedical Engineering Society EMBS/BMES Conference, 2002. Proceedings of the Second Joint
ISSN
1094-687X
Print_ISBN
0-7803-7612-9
Type
conf
DOI
10.1109/IEMBS.2002.1136847
Filename
1136847
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