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首页> 外文期刊>Medical engineering & physics. >The study of wall deformation and flow distribution with transmural pressure by three-dimensional model of thoracic aorta wall.
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The study of wall deformation and flow distribution with transmural pressure by three-dimensional model of thoracic aorta wall.

机译:利用胸主动脉壁三维模型研究壁膜变形和壁膜压力下的血流分布。

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摘要

The sensitivity of shear stress over smooth muscle cells (SMCs) to the deformability of media layer due to pressure is investigated in thoracic aorta wall using three-dimensional simulations. A biphasic, anisotropic model assuming the radius, thickness, and hydraulic conductivity of vessel wall as functions of transmural pressure is employed in numerical simulations. The leakage of interstitial fluid from intima to media layer is only possible through fenestral pores on the internal elastic lamina (IEL). The media layer is assumed a heterogeneous medium containing SMCs embedded in a porous extracellular matrix of elastin, proteoglycan, and collagen fibers. The applicable pressures for the deformation of media layer are varied from 0 to 180 mmHg. The SMCs are cylindrical objects of circular cross section at zero pressure. The cross sectional shape of SMCs changes from circle to ellipse as the media is compressed. The local shear stress over the nearest SMC to the IEL profoundly depends on pressure, SMCs configurations, and the corresponding distance to the IEL. The consideration of various SMC configurations, namely the staggered and square arrays, mimics various physiological conditions that can happen in positioning of an SMC. The results of our simulations show that even the second nearest SMCs to the IEL can significantly change their functions due to high shear stress levels. This is in contrast to earlier studies suggesting the highest vulnerability to shear stress for the innermost layer of SMCs at the intimal-medial interface.
机译:使用三维模拟研究了胸主动脉壁上平滑肌细胞(SMCs)上的剪切应力对介质层由于压力引起的变形的敏感性。在数值模拟中采用了假设容器壁的半径,厚度和水力传导率作为透壁压力的函数的双相各向异性模型。间隙液从内膜到介质层的泄漏只能通过内部弹性层板(IEL)上的股骨孔进行。假定介质层是一种异质介质,其中包含嵌入弹性蛋白,蛋白聚糖和胶原纤维的多孔细胞外基质中的SMC。介质层变形的适用压力范围为0至180 mmHg。 SMC是在零压力下具有圆形横截面的圆柱体。随着介质的压缩,SMC的横截面形状从圆形变为椭圆形。最接近IEL的SMC上的局部剪切应力很大程度上取决于压力,SMC的配置以及与IEL的相应距离。对各种SMC配置(即交错和方形阵列)的考虑模仿了SMC定位中可能发生的各种生理状况。我们的仿真结果表明,由于高剪切应力水平,即使是离IEL较近的SMC也可以显着改变其功能。这与早期的研究相反,后者的研究表明内膜-内膜界面的SMC最内层在剪切应力方面具有最高的脆弱性。

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