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y Local variations in material and structural properties characterize murine thoracic aortic aneurysm mechanics

机译:y局部变化和结构性质表征小鼠胸主动脉瘤力学

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We recently developed an approach to characterize local nonlinear, anisotropic mechanical properties of murine arteries by combining biaxial extension-distension testing, panoramic digital image correlation, and an inverse method based on the principle of virtual power. This experimental-computational approach was illustrated for the normal murine abdominal aorta assuming uniform wall thickness. Here, however, we extend our prior approach by adding an optical coherence tomography (OCT) imaging system that permits local reconstructions of wall thickness. This multimodality approach is then used to characterize spatial variations of material and structural properties in ascending thoracic aortic aneurysms (aTAA) from two genetically modified mouse models (fibrillin-1 and fibulin-4 deficient) and to compare them with those from angiotensin II-infused apolipoprotein E-deficient and wild-type control ascending aortas. Local values of stored elastic energy and biaxial material stiffness, computed from spatial distributions of the best fit material parameters, varied significantly with circumferential position (inner vs. outer curvature, ventral vs. dorsal sides) across genotypes and treatments. Importantly, these data reveal an inverse relationship between material stiffness and wall thickness that underlies a general linear relationship between stiffness and wall stress across aTAAs. OCT images also revealed sites of advanced medial degeneration, which were captured by the inverse material characterization. Quantification of histological data further provided high-resolution local correlations among multiple mechanical metrics and wall microstructure. This is the first time that such structural defects and local properties have been characterized mechanically, which can better inform computational models of aortopathy that seek to predict where dissection or rupture may initiate.
机译:我们最近通过组合双轴延伸 - 扩张试验,全景数字图像相关性和基于虚拟电力原理的逆方法来表征鼠动脉的局部非线性,各向异性机械性能的方法。普通鼠腹主动脉示出了这种实验计算方法,假设壁厚均匀。然而,在这里,我们通过添加光学相干断层扫描(OCT)成像系统来扩展我们的现有方法,该系统允许壁厚的局部重建。然后使用这种多模态方法来表征来自两个遗传修饰的小鼠模型(Fiblillin-1和Fibulin-4缺陷)中升胸主动脉瘤(ATAA)中升胸主动脉动脉瘤(ATAA)的空间变化和结构性质的空间变化,并将它们与来自血管紧张素II注入的那些进行比较载脂蛋白E缺陷和野生型对照升序主动脉。储存弹性能量和双轴材料刚度的局部值,从最佳拟合材料参数的空间分布计算,在基因型和治疗中具有圆周位置(内部与外曲率,腹侧腹侧腹侧侧面)显着变化。重要的是,这些数据揭示了材料刚度和壁厚之间的逆关系,该壁厚将刚度与壁应力之间的一般线性关系跨越ATAAs。 OCT图像还揭示了先进的内侧变性的位点,其被逆材料表征捕获。组织学数据的定量还提供了多种机械度量和壁微结构之间的高分辨率局部相关性。这是第一次机械地表征了这种结构缺陷和局部特性,这可以更好地通知寻求预测解剖或破裂的血管病的计算模型。

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