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An investigation of the influence of cell topography on epithelial mechanical stresses during pulmonary airway reopening

机译:肺气道重新开放过程中细胞形貌对上皮机械应力影响的研究

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摘要

The goal of this study is to assess the local mechanical environment of the pulmonary epithelium in a computational model of airway reopening. To this end, the boundary element method (BEM) in conjunction with lubrication theory is implemented to assess the stationary-state behavior of a semi-infinite bubble traveling through a liquid-occluded parallel plate flow chamber lined with epithelial cells. The fluid occlusion is assumed to be Newtonian and inertia is neglected. The interactions between the microgeometry of the model airway’s walls and the interfacial kinematics surrounding the bubble’s tip result in a complex, spatially and temporally dependent stress distribution. The walls’ nonplanar topography magnifies the normal and shear stresses and stress gradients. We find that decreasing the bubble’s speed serves to increase the maximum normal stress and stress gradient but decrease the maximum shear stress and stress gradient. Our results give credence to the pressure-gradient-induced epithelial damage theory recently proposed by Bilek et al. [J. Appl. Physiol. >94, 770 (2003)] and Kay et al. [J. Appl. Physiol. >97, 269 (2004)]. We conclude that the amplified pressure gradients found in this study may be even more detrimental to the airway’s cellular epithelium during airway reopening.
机译:这项研究的目的是在气道重新开放的计算模型中评估肺上皮的局部机械环境。为此,结合润滑理论,采用边界元方法(BEM)来评估半无限气泡通过衬有上皮细胞的液体封闭平行板流动室的稳态行为。流体闭塞被假定为牛顿,而惯性被忽略。模型气道壁的微几何形状与气泡尖端周围的界面运动学之间的相互作用导致了复杂的,时空相关的应力分布。墙壁的非平面形貌会放大法向应力和剪应力以及应力梯度。我们发现降低气泡的速度有助于增加最大法向应力和应力梯度,但会降低最大剪应力和应力梯度。我们的研究结果证实了Bilek等人最近提出的压力梯度引起的上皮损伤理论。 [J.应用生理。 > 94 ,770(2003)]和Kay等。 [J.应用生理。 > 97 ,第269页(2004)]。我们得出的结论是,在这项研究中发现的放大的压力梯度可能在气道重新开放期间对气道的细胞上皮更加有害。

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