Role of subcellular shear-stress distributions in endothelial cell mechanotransduction

被引:48
|
作者
Barbee, KA [1 ]
机构
[1] Drexel Univ, Sch Biomed Engn Sci & Hlth Syst, Philadelphia, PA 19104 USA
基金
美国国家科学基金会;
关键词
endothelial; mechanotransduction; athersclerosis;
D O I
10.1114/1.1467678
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
The endothelium of blood vessels presents a wavy surface to the flowing blood. The subcellular distribution of shear stress depends on the shape and orientation of the cells and on their spatial arrangement within the monolayer. By studying details of the distribution of stress at this scale and the morphological responses that serve to modify the distribution, we can gain insight into the physical mechanisms by which the cell senses its fluid mechanical environment. The rapidly growing body of evidence indicates that endothelial cells discriminate between subtle variations in the exact loading conditions including differences in temporal and spatial gradients of shear stress, steady and pulsatile laminar flow, and laminar and turbulent flows. While in a few studies the effects of these individual flow characteristics have been carefully isolated, it is difficult to assess the relative importance of any one parameter. To interpret the relationships between isolated flow characteristics or the integrated effects of combined loading conditions and the biochemical signaling events that mediate the cell response, a full stress analysis of the cell is needed. The microscopic distribution of shear stress acting upon the cell surface provides the boundary condition for such an analysis. Experimental and analytical tools are being developed to assess the stress distribution throughout the cellular structures that might be involved in mechanotransduction. (C) 2002 Biomedical Engineering Society.
引用
收藏
页码:472 / 482
页数:11
相关论文
共 50 条
  • [21] SHEAR-STRESS INCREASES HYDRAULIC CONDUCTIVITY OF CULTURED ENDOTHELIAL-CELL MONOLAYERS
    SILL, HW
    ARTMAN, JR
    HOLLIS, TM
    TARBELL, JM
    FASEB JOURNAL, 1993, 7 (03): : A118 - A118
  • [22] REGULATION OF THE ENDOTHELIAL PDGF-A GENE BY SHEAR-STRESS
    HALNON, NJ
    COLLINS, T
    GIMBRONE, MA
    RESNICK, N
    CIRCULATION, 1994, 90 (04) : 88 - 88
  • [23] MECHANISM OF ENDOTHELIAL-CELL ALIGNMENT AND ACTIN STRESS FIBER INDUCTION BY FLUID SHEAR-STRESS
    MALEK, AM
    IZUMO, S
    CIRCULATION, 1994, 90 (04) : 89 - 89
  • [24] LOW SHEAR-STRESS TRANSIENTLY ALTERS ENDOTHELIAL PROTEOGLYCANS
    MOOBERRY, SL
    GARDNER, KG
    COULSON, JD
    PEDIATRIC RESEARCH, 1989, 25 (04) : A56 - A56
  • [25] RESPONSE OF ENDOTHELIAL-CELLS TO FLUID SHEAR-STRESS
    DEWEY, CF
    ANNALS OF BIOMEDICAL ENGINEERING, 1983, 11 (01) : 65 - 66
  • [26] STIMULATION OF ENDOTHELIAL PROTEIN-SYNTHESIS BY SHEAR-STRESS
    FRANGOS, JA
    GUPTE, A
    BERTHIAUME, F
    OSCILOWSKI, V
    FASEB JOURNAL, 1988, 2 (05): : A1076 - A1076
  • [27] THE EFFECTS OF MIXING ON BIOPROCESSES - CONCENTRATION DISTRIBUTIONS AND MECHANICAL SHEAR-STRESS
    CONVERTI, A
    SOMMARIVA, C
    DELBORGHI, M
    FERRAIOLO, G
    BIOPROCESS ENGINEERING, 1993, 9 (05): : 183 - 189
  • [28] 3-DIMENSIONAL REDISTRIBUTION OF ENDOTHELIAL-CELL MICROFILAMENTS IN RESPONSE TO SHEAR-STRESS
    GALBRAITH, CG
    SKALAK, R
    CHIEN, S
    MOLECULAR BIOLOGY OF THE CELL, 1995, 6 : 926 - 926
  • [29] Role of Rho protein in shear-stress response
    Essig, M
    NEPHROLOGIE, 2000, 21 (01): : 29 - 30
  • [30] Integrating molecular and cellular components of endothelial shear stress mechanotransduction
    Power, Gavin
    Ferreira-Santos, Larissa
    Martinez-Lemus, Luis A.
    Padilla, Jaume
    AMERICAN JOURNAL OF PHYSIOLOGY-HEART AND CIRCULATORY PHYSIOLOGY, 2024, 327 (04): : H989 - H1003