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一种用于心血管系统首个三维-一维模型的耦合策略,以研究脉搏波传播对心脏功能的影响。

A coupling strategy for a first 3D-1D model of the cardiovascular system to study the effects of pulse wave propagation on cardiac function.

作者信息

Caforio Federica, Augustin Christoph M, Alastruey Jordi, Gsell Matthias A F, Plank Gernot

机构信息

Institute of Mathematics and Scientific Computing, NAWI Graz, University of Graz, Graz, Austria.

Gottfried Schatz Research Center: Division of Biophysics, Medical University of Graz, Graz, Austria.

出版信息

Comput Mech. 2022;70(4):703-722. doi: 10.1007/s00466-022-02206-6. Epub 2022 Jul 9.

Abstract

A key factor governing the mechanical performance of the heart is the bidirectional coupling with the vascular system, where alterations in vascular properties modulate the pulsatile load imposed on the heart. Current models of cardiac electromechanics (EM) use simplified 0D representations of the vascular system when coupling to anatomically accurate 3D EM models is considered. However, these ignore important effects related to pulse wave transmission. Accounting for these effects requires 1D models, but a 3D-1D coupling remains challenging. In this work, we propose a novel, stable strategy to couple a 3D cardiac EM model to a 1D model of blood flow in the largest systemic arteries. For the first time, a personalised coupled 3D-1D model of left ventricle and arterial system is built and used in numerical benchmarks to demonstrate robustness and accuracy of our scheme over a range of time steps. Validation of the coupled model is performed by investigating the coupled system's physiological response to variations in the arterial system affecting pulse wave propagation, comprising aortic stiffening, aortic stenosis or bifurcations causing wave reflections. Our first 3D-1D coupled model is shown to be efficient and robust, with negligible additional computational costs compared to 3D-0D models. We further demonstrate that the calibrated 3D-1D model produces simulated data that match with clinical data under baseline conditions, and that known physiological responses to alterations in vascular resistance and stiffness are correctly replicated. Thus, using our coupled 3D-1D model will be beneficial in modelling studies investigating wave propagation phenomena.

摘要

决定心脏机械性能的一个关键因素是与血管系统的双向耦合,其中血管特性的改变会调节施加在心脏上的脉动负荷。当前的心脏电机械(EM)模型在考虑与解剖学精确的3D EM模型耦合时,使用简化的血管系统0D表示。然而,这些模型忽略了与脉搏波传播相关的重要影响。考虑这些影响需要1D模型,但3D-1D耦合仍然具有挑战性。在这项工作中,我们提出了一种新颖、稳定的策略,将3D心脏EM模型与最大体动脉中的血流1D模型耦合。首次构建了左心室和动脉系统的个性化耦合3D-1D模型,并将其用于数值基准测试,以证明我们的方案在一系列时间步长上的稳健性和准确性。通过研究耦合系统对影响脉搏波传播的动脉系统变化的生理反应来进行耦合模型的验证,这些变化包括主动脉硬化、主动脉狭窄或导致波反射的分叉。我们的第一个3D-1D耦合模型被证明是高效且稳健的,与3D-0D模型相比,额外的计算成本可以忽略不计。我们进一步证明,校准后的3D-1D模型产生的模拟数据在基线条件下与临床数据匹配,并且已知的对血管阻力和硬度变化的生理反应被正确复制。因此,使用我们的耦合3D-1D模型将有利于研究波传播现象的建模研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5408/9477941/9210c13b7f5a/466_2022_2206_Fig1_HTML.jpg

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