Model-Based Assessment of Elastic Material Parameters in Rheumatic Heart Disease Patients and Healthy Subjects

Mary A. Familusi, Sebastian Skatulla, Jagir R. Hussan, Olukayode O. Aremu, Daniel Mutithu, Evelyn N. Lumngwena, Freedom N. Gumedze, Ntobeko A. B. Ntusi
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Abstract

Non-invasive measurements are important for the development of new treatments for heart failure, which is one of the leading causes of death worldwide. This study aimed to develop realistic subject-specific computational models of human biventricles using clinical data. Three-dimensional finite element models of the human ventricles were created using cardiovascular magnetic resonance images of rheumatic heart disease (RHD) patients and healthy subjects. The material parameter optimization uses inverse modeling based on the finite element method combined with the Levenberg–Marquardt method (LVM) by targeting subject-specific hemodynamics. The study of elastic myocardial parameters between healthy subjects and RHD patients showed an elevated stiffness in diseased hearts. In particular, the anisotropic material behavior of the healthy and diseased cardiac tissue significantly differed from one another. Furthermore, as the LVEF decreased, the stiffness and its orientation-dependent parameters increased. The simulation-derived LV myocardial circumferential and longitudinal stresses were negatively associated with the LVEF. The sensitivity analysis result demonstrated that the observed significant difference between the elastic material parameters of diseased and healthy myocardium was not exclusively attributable to an increased LVEDP in the diseased heart. These results could be applied to future computational studies for developing heart failure treatment.
基于模型的风湿性心脏病患者和健康人弹性材料参数评估
非侵入性测量对于开发治疗心力衰竭的新方法非常重要,心力衰竭是世界范围内死亡的主要原因之一。本研究旨在利用临床数据建立切合实际的人类双脑室计算模型。利用风湿性心脏病(RHD)患者和健康受试者的心血管磁共振图像,建立了人类心室的三维有限元模型。材料参数优化采用基于有限元法与Levenberg-Marquardt方法(LVM)相结合的逆建模方法,以受试者特异性血流动力学为目标。健康受试者和RHD患者之间的弹性心肌参数研究表明,病变心脏僵硬度升高。特别是,健康和病变心脏组织的各向异性物质行为显著不同。此外,随着LVEF的减小,刚度及其与方向相关的参数增加。模拟得出的左室心肌周向和纵向应力与LVEF呈负相关。敏感性分析结果表明,观察到的病变心肌与健康心肌弹性材料参数之间的显著差异并不完全归因于病变心脏中LVEDP的增加。这些结果可以应用于未来开发心力衰竭治疗的计算研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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