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A computational model that predicts reverse growth in response to mechanical unloading

机译:计算模型,可预测机械卸载后的反向增长

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Ventricular growth is widely considered to be an important feature in the adverse progression of heart diseases, whereas reverse ventricular growth (or reverse remodeling) is often considered to be a favorable response to clinical intervention. In recent years, a number of theoretical models have been proposed to model the process of ventricular growth while little has been done to model its reverse. Based on the framework of volumetric strain-driven finite growth with a homeostatic equilibrium range for the elastic myofiber stretch, we propose here a reversible growth model capable of describing both ventricular growth and its reversal. We used this model to construct a semi-analytical solution based on an idealized cylindrical tube model, as well as numerical solutions based on a truncated ellipsoidal model and a human left ventricular model that was reconstructed from magnetic resonance images. We show that our model is able to predict key features in the end-diastolic pressure-volume relationship that were observed experimentally and clinically during ventricular growth and reverse growth. We also show that the residual stress fields generated as a result of differential growth in the cylindrical tube model are similar to those in other nonidentical models utilizing the same geometry.
机译:心室生长被广泛认为是心脏病不良进展中的重要特征,而心室反向生长(或反向重塑)通常被认为是对临床干预的有利反应。近年来,已经提出了许多理论模型来对心室生长过程进行建模,而很少对其反向进行建模。基于弹性肌纤维伸展的具有稳态平衡范围的体积应变驱动的有限生长的框架,我们在此提出一种可逆的生长模型,该模型能够描述心室的生长及其逆转。我们使用该模型构造了基于理想化圆柱管模型的半解析解,以及基于截断椭球模型和从磁共振图像重建的人体左心室模型的数值解。我们表明,我们的模型能够预测舒张末期压力-容积关系中的关键特征,这些特征在心室生长和反向生长过程中通过实验和临床观察到。我们还表明,由于圆柱管模型中的差异增长而产生的残余应力场与使用相同几何形状的其他不同模型中的残余应力场相似。

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