论文标题

使用流体结构互动模拟对具有多个脑动脉瘤的受试者的生物力学参数的比较评估

Comparative Assessment of Biomechanical Parameters in Subjects With Multiple Cerebral Aneurysms Using Fluid--Structure Interaction Simulations

论文作者

Shidhore, Tanmay C., Cohen-Gadol, Aaron A., Rayz, Vitaliy L., Christov, Ivan C.

论文摘要

脑动脉瘤进展是导致动脉瘤生长和破裂的生物力学和临床风险因素的复杂相互作用的结果。具有多个动脉瘤的受试者是独特的病例,预计临床风险因素会平等影响每个动脉瘤,从而可以解散生物力学因子对动脉瘤生长的影响。为此,我们使用心血管模拟平台仿真,对基于图像的稳定模型和同一受试者的基于图像的稳定和增长动脉瘤的模型进行了对动脉瘤生物力学的比较计算流体结构相互作用分析。我们观察到,与稳定的动脉瘤相比,在2个或更多和1.5的因素上,暴露于低剪切和中间的收缩式动脉壁位移的区域分别较高。此外,我们定义了一种新型度量,即振荡应力指数(OSTI),该指标表明振荡动脉壁应力的位置。我们观察到,生长的动脉瘤的特征是低壁剪切和高OSTI的区域,我们假设它们与胶原蛋白降解和重塑区域有关。在稳定的动脉瘤中,此类区域不存在或低于表面积的5%。我们的结果为在较大的受试者群体中的未来研究奠定了基础,以评估这些生物力学参数在脑动脉瘤生长中的统计学意义。

Cerebral aneurysm progression is a result of a complex interplay of the biomechanical and clinical risk factors that drive aneurysmal growth and rupture. Subjects with multiple aneurysms are unique cases wherein clinical risk factors are expected to affect each aneurysm equally, thus allowing for disentangling the effect of biomechanical factors on aneurysmal growth. Towards this end, we performed a comparative computational fluid--structure interaction analysis of aneurysmal biomechanics in image-based models of stable and growing aneurysms in the same subjects, using the cardiovascular simulation platform SimVascular. We observed that areas exposed to low shear and the median peak systolic arterial wall displacement were higher by factors of 2 or more and 1.5, respectively, in growing aneurysms as compared to stable aneurysms. Furthermore, we defined a novel metric, the oscillatory stress index (OStI), that indicates locations of oscillating arterial wall stresses. We observed that growing aneurysms were characterized by regions of combined low wall shear and high OStI, which we hypothesize to be associated with regions of collagen degradation and remodeling. Such regions were either absent or below 5% of the surface area in stable aneurysms. Our results lay the groundwork for future studies in larger cohorts of subjects, to evaluate the statistical significance of these biomechanical parameters in cerebral aneurysm growth.

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