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Low-density lipoprotein accumulation within a carotid artery with multilayer elastic porous wall: fluid-structure interaction and non-Newtonian considerations

机译:具有多层弹性多孔壁的颈动脉内低密度脂蛋白积聚:流体-结构相互作用和非牛顿性考虑

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摘要

Low-density lipoprotein (LDL), which is recognized as bad cholesterol, typically has been regarded as a main cause of atherosclerosis. LDL infiltration across arterial wall and subsequent formation of Ox-LDL could lead to atherogenesis. In the present study, combined effects of non-Newtonian fluid behavior and fluid-structure interaction (FSI) on LDL mass transfer inside an artery and through its multilayer arterial wall are examined numerically. Navier-Stokes equations for the blood flow inside the lumen and modified Darcy's model for the power-law fluid through the porous arterial wall are coupled with the equations of mass transfer to describe LDL distributions in various segments of the artery. In addition, the arterial wall is considered as a heterogeneous permeable elastic medium. Thus, elastodynamics equation is invoked to examine effects of different wall elasticity on LDL distribution in the artery. Findings suggest that non-Newtonian behavior of filtrated plasma within the wall enhances LDL accumulation meaningfully. Moreover, results demonstrate that at high blood pressure and due to the wall elasticity, endothelium pores expand, which cause significant variations on endothelium physiological properties in a way that lead to higher LDL accumulation. Additionally, results describe that under hypertension, by increasing angular strain, endothelial junctions especially at leaky sites expand more dramatic for the high elastic model, which in turn causes higher LDL accumulation across the intima layer and elevates atherogenesis risk. (C) 2015 Elsevier Ltd. All rights reserved.
机译:低密度脂蛋白(LDL)被认为是坏胆固醇,通常被认为是动脉粥样硬化的主要原因。 LDL穿过动脉壁的渗透和随后的Ox-LDL的形成可能导致动脉粥样硬化。在本研究中,数值研究了非牛顿流体行为和流体-结构相互作用(FSI)对低密度脂蛋白在动脉内以及通过多层动脉壁的传质的综合影响。内腔内血流的Navier-Stokes方程和通过多孔动脉壁的幂律流体的修正Darcy模型与质量传递方程相结合,以描述动脉各个节段中的LDL分布。另外,动脉壁被认为是异质的可渗透弹性介质。因此,调用了弹性动力学方程来检查不同壁弹性对动脉中LDL分布的影响。发现表明,壁内过滤血浆的非牛顿行为可显着增强LDL积累。此外,结果表明,在高血压和由于壁弹性的作用下,内皮孔会扩张,从而导致内皮生理特性发生明显变化,从而导致更高的LDL积累。另外,结果描述了在高血压下,通过增加角应变,内皮连接,尤其是在泄漏部位的内皮连接,对于高弹性模型而言会更加剧烈地扩张,这反过来会导致整个内膜层的LDL积累更高,并增加动脉粥样硬化的风险。 (C)2015 Elsevier Ltd.保留所有权利。

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