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Transmission of steady and oscillatory fluid shear stress across epithelial and endothelial surface structures

机译:稳态和振荡流体剪切应力在上皮和内皮表面结构上的传递

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The glycocalyx on the apical surface of vascular endothelial cells and the microvilli and cilia on kidney epithelial cells have been modeled as surface layers with a hexagonal arrangement of structural elements. These elements have been proposed to serve a mechanosensory function in the initiation of intracellular signaling by fluid shear stress. In this paper we examine the response of these surface layers when steady or oscillating shear is applied at their outer edge. In the case of steady shear, our results show that the deflection of the structural elements is proportional to the product of the applied shear stress and their length L and inversely proportional to the natural damped vibration frequency of the structural element omega(c). A fluid velocity boundary layer develops at the outer edge of the surface layers when the dimensionless Brinkman parameter alpha=L/rootK(P), where K-P is the Darcy permeability, is asymptotically large. In the case of oscillating shear, we find that the motions of both the fluid and structural elements are in a quasisteady state at physiological conditions. No attenuation or phase shift of the torque is induced by the hydrodynamic drag when the applied frequency omega
机译:血管内皮细胞的顶表面上的糖萼和肾上皮细胞上的微绒毛和纤毛已被建模为具有六边形结构元素的表面层。已经提出这些元件在通过流体剪切应力引发细胞内信号传导中起机械感觉功能。在本文中,我们研究了在外边缘施加稳定或振荡剪切时这些表面层的响应。在稳态剪切的情况下,我们的结果表明,结构元件的挠度与所施加的剪切应力与其长度L的乘积成正比,与结构元件omega(c)的固有阻尼振动频率成反比。当无量纲的Brinkman参数alpha = L / rootK(P)(其中K-P是达西渗透率)渐近变大时,在表面层的外边缘处形成了流体速度边界层。在振荡剪切的情况下,我们发现流体和结构元件的运动在生理条件下都处于准稳态。当施加频率omega

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