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Computational Growth and Remodeling of Abdominal Aortic Aneurysms Constrained by the Spine

机译:脊柱约束性腹主动脉瘤的计算生长和重塑

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Abdominal aortic aneurysms (AAAs) evolve over time, and the vertebral column, which acts as an external barrier, affects their biomechanical properties. Mechanical interaction between AAAs and the spine is believed to alter the geometry, wall stress distribution, and blood flow, although the degree of this interaction may depend on AAAs specific configurations. In this study, we use a growth and remodeling (G&R) model, which is able to trace alterations of the geometry, thus allowing us to computationally investigate the effect of the spine for progression of the AAA. Medical image-based geometry of an aorta is constructed along with the spine surface, which is incorporated into the computational model as a cloud of points. The G&R simulation is initiated by local elastin degradation with different spatial distributions. The AAA-spine interaction is accounted for using a penalty method when the AAA surface meets the spine surface. The simulation results show that, while the radial growth of the AAA wall is prevented on the posterior side due to the spine acting as a constraint, the AAA expands faster on the anterior side, leading to higher curvature and asymmetry in the AAA configuration compared to the simulation excluding the spine. Accordingly, the AAA wall stress increases on the lateral, posterolateral, and the shoulder regions of the anterior side due to the AAA-spine contact. In addition, more collagen is deposited on the regions with a maximum diameter. We show that an image-based computational G&R model not only enhances the prediction of the geometry, wall stress, and strength distributions of AAAs but also provides a framework to account for the interactions between an enlarging AAA and the spine for a better rupture potential assessment and management of AAA patients.
机译:腹主动脉瘤(AAAs)随着时间的流逝而发展,作为外部屏障的椎骨柱会影响其生物力学性能。 AAA与脊柱之间的机械相互作用被认为会改变几何形状,壁应力分布和血流,尽管这种相互作用的程度可能取决于AAA的特定配置。在这项研究中,我们使用了一个生长和重塑(G&R)模型,该模型能够追踪几何形状的变化,从而使我们能够通过计算研究脊柱对AAA进展的影响。将基于医学图像的主动脉几何结构与脊柱表面一起构建,并将其作为点云合并到计算模型中。 G&R模拟是由具有不同空间分布的弹性蛋白降解引发的。当AAA表面与书脊表面相遇时,使用惩罚方法解释AAA-书脊相互作用。仿真结果表明,尽管由于脊柱的约束而阻止了AAA壁在后侧的径向生长,但AAA在前侧扩展得更快,与AAA构型相比,导致了更高的曲率和不对称性。模拟(不包括脊柱)。因此,由于AAA-脊柱接触,AAA壁应力在前侧的外侧,后外侧和肩部区域上增加。另外,更多的胶原蛋白沉积在具有最大直径的区域上。我们表明,基于图像的计算G&R模型不仅增强了AAA的几何形状,壁应力和强度分布的预测,而且还提供了一个框架来说明扩大的AAA和脊柱之间的相互作用,以便更好地评估破裂可能性和管理AAA患者。

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