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Modelling evolution and the evolving mechanical environment of saccular cerebral aneurysms

机译:囊性脑动脉瘤的演化过程及其力学环境的建模

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A fluid–solid-growth (FSG) model of saccular cerebral aneurysm evolution is developed. It utilises a realistic two-layered structural model of the internal carotid artery and explicitly accounts for the degradation of the elastinous constituents and growth and remodelling (G&R) of the collagen fabric. Aneurysm inception is prescribed: a localised degradation of elastin results in a perturbation in the arterial geometry; the collagen fabric adapts, and the artery achieves a new homeostatic configuration. The perturbation to the geometry creates an altered haemodynamic environment. Subsequent degradation of elastin is explicitly linked to low wall shear stress (WSS) in a confined region of the arterial domain. A sidewall saccular aneurysm develops, the collagen fabric adapts and the aneurysm stabilises in size. A quasi-static analysis is performed to determine the geometry at diastolic pressure. This enables the cyclic stretching of the tissue to be quantified, and we propose a novel index to quantify the degree of biaxial stretching of the tissue. Whilst growth is linked to low WSS from a steady (systolic) flow analysis, a pulsatile flow analysis is performed to compare steady and pulsatile flow parameters during evolution. This model illustrates the evolving mechanical environment for an idealised saccular cerebral aneurysm developing on a cylindrical parent artery and provides the guidance to more sophisticated FSG models of aneurysm evolution which link G&R to the local mechanical stimuli of vascular cells.
机译:建立了囊性脑动脉瘤演变的液固增长(FSG)模型。它利用了颈内动脉的现实两层结构模型,并明确说明了弹性成分的降解以及胶原织物的生长和重塑(G&R)。规定了动脉瘤发作:弹性蛋白的局部降解会导致动脉几何结构的紊乱。胶原蛋白织物适应后,动脉达到了新的稳态结构。对几何体的扰动会改变血液动力学环境。弹性蛋白的后续降解与动脉区域狭窄区域中的低壁切应力(WSS)明确相关。侧壁囊状动脉瘤发展,胶原纤维适应,动脉瘤尺寸稳定。进行准静态分析以确定舒张压下的几何形状。这使组织的周期性拉伸得以量化,我们提出了一种新颖的指标来量化组织的双轴拉伸程度。增长与稳定(收缩)流量分析的低WSS相关联,同时进行脉动流量分析以比较演化过程中的稳定流量和脉动流量参数。该模型说明了在圆柱形母动脉上发展的理想囊状脑动脉瘤的不断发展的机械环境,并为更复杂的动脉瘤演变的FSG模型提供了指导,该模型将G&R与血管细胞的局部机械刺激联系起来。

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