作者
Gunes Uzer, Sarah L Manske, M Ete Chan, Fu-Pen Chiang, Clinton T Rubin, Mary D Frame, Stefan Judex
发表日期
2012/9/1
期刊
Cellular and Molecular Bioengineering
卷号
5
期号
3
页码范围
266-276
出版商
Springer US
简介
The identification of the physical mechanism(s) by which cells can sense vibrations requires the determination of the cellular mechanical environment. Here, we quantified vibration-induced fluid shear stresses in vitro and tested whether this system allows for the separation of two mechanical parameters previously proposed to drive the cellular response to vibration—fluid shear and peak accelerations. When peak accelerations of the oscillatory horizontal motions were set at 1 g and 60 Hz, peak fluid shear stresses acting on the cell layer reached 0.5 Pa. A 3.5-fold increase in fluid viscosity increased peak fluid shear stresses 2.6-fold while doubling fluid volume in the well caused a 2-fold decrease in fluid shear. Fluid shear was positively related to peak acceleration magnitude and inversely related to vibration frequency. These data demonstrated that peak shear stress can be effectively separated from peak …
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