A comparison of strain and fluid shear stress in stimulating bone cell responses - a computational and experimental study

被引:135
作者
McGarry, JG
Klein-Nulend, J
Mullender, MG
Prendergast, PJ [1 ]
机构
[1] Univ Dublin Trinity Coll, Ctr Bioengn, Dept Mech Engn, Dublin 2, Ireland
[2] Univ Amsterdam, ACTA, Dept Oral Cell Biol, Amsterdam, Netherlands
[3] Vrije Univ Amsterdam, Amsterdam, Netherlands
关键词
cell deformation; cell biomechanics; bone remodeling;
D O I
10.1096/fj.04-2210fje
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Bone undergoes continuous remodeling in response to mechanical loading. However, the underlying mechanisms by which bone cells respond to their changing mechanical environment, that is, strain in the load-bearing matrix or fluid flow through the canalicular network, are not well understood. It has been established in vitro that bone cells respond differently to substrate strain and fluid shear stress treatments. Uncovering the mechanical basis of these differences represents a significant challenge to our understanding of cellular mechanotransduction and bone remodeling. To investigate this problem, we developed a biomechanical model of an adherent cell, to test the hypothesis that bone cells respond differently to 0.6 Pa fluid shear stress and 1,000 muepsilon substrate strain stimulation because of qualitative and quantitative differences in the cellular deformation caused. Fluid shear stress loading conditions resulted in maximum displacements at the apical surface of the cell similar to8 times higher than those due to strain at the cell-substrate interface and also caused higher stressing of all parts of the cell. Significantly, this shows that the deforming effects of fluid shear stress and strain on a cellular level are qualitatively different, which may provide a basis for explaining differences in bone cell responses to both stimuli as reported in several studies. Although our approach to modeling the morphology and complex physical environment of an adherent cell is certainly simplified, our results do show independent roles for fluid flow and strain as mechanical stimuli and highlight the importance of deformation on a cellular level in bone physiology.
引用
收藏
页码:482 / +
页数:22
相关论文
共 60 条
[21]   Direct observations of the mechanical behaviors of the cytoskeleton in living fibroblasts [J].
Heidemann, SR ;
Kaech, S ;
Buxbaum, RE ;
Matus, A .
JOURNAL OF CELL BIOLOGY, 1999, 145 (01) :109-122
[22]   Expression of nitric oxide synthase isoforms in bone and bone cell cultures [J].
Helfrich, MH ;
Evans, DE ;
Grabowski, PS ;
Pollock, JS ;
Ohshima, H ;
Ralston, SH .
JOURNAL OF BONE AND MINERAL RESEARCH, 1997, 12 (07) :1108-1115
[23]   BONE TISSUE ENGINEERING - THE ROLE OF INTERSTITIAL FLUID-FLOW - REVIEW [J].
HILLSLEY, MV ;
FRANGOS, JA .
BIOTECHNOLOGY AND BIOENGINEERING, 1994, 43 (07) :573-581
[24]   What is the role of the convective current density in the real-time calcium response of cultured bone cells to fluid flow? [J].
Hung, CT ;
Allen, FD ;
Pollack, SR ;
Brighton, CT .
JOURNAL OF BIOMECHANICS, 1996, 29 (11) :1403-1409
[25]   Tensegrity: The architectural basis of cellular mechanotransduction [J].
Ingber, DE .
ANNUAL REVIEW OF PHYSIOLOGY, 1997, 59 :575-599
[26]  
JANMEY PA, 1991, PHYSIOL REV, V78, P763
[27]   Fluid flow stimulates rapid and continuous release of nitric oxide in osteoblasts [J].
Johnson, DL ;
McAllister, TN ;
Frangos, JA .
AMERICAN JOURNAL OF PHYSIOLOGY-ENDOCRINOLOGY AND METABOLISM, 1996, 271 (01) :E205-E208
[28]   BIOCHEMICAL SIGNAL TRANSDUCTION OF MECHANICAL STRAIN IN OSTEOBLAST-LIKE CELLS [J].
JONES, DB ;
NOLTE, H ;
SCHOLUBBERS, JG ;
TURNER, E ;
VELTEL, D .
BIOMATERIALS, 1991, 12 (02) :101-110
[29]  
Kamm RD, 2000, ASME INT C MECH BIOL, V242, P1
[30]   A three-dimensional viscoelastic model for cell deformation with experimental verification [J].
Karcher, H ;
Lammerding, J ;
Huang, HD ;
Lee, RT ;
Kamm, RD ;
Kaazempur-Mofrad, MR .
BIOPHYSICAL JOURNAL, 2003, 85 (05) :3336-3349