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第三心音产生的血流动力学驱动数学模型。

Hemodynamics-driven mathematical model of third heart sound generation.

作者信息

Shahmohammadi Mehrdad, Huberts Wouter, Luo Hongxing, Westphal Philip, Cornelussen Richard N, Prinzen Frits W, Delhaas Tammo

机构信息

Department of Biomedical Engineering, Cardiovascular Research Institute Maastricht (CARIM), Maastricht University, Maastricht, Netherlands.

Department of Physiology, Cardiovascular Research Institute Maastricht (CARIM), Maastricht University, Maastricht, Netherlands.

出版信息

Front Physiol. 2022 Oct 11;13:847164. doi: 10.3389/fphys.2022.847164. eCollection 2022.

Abstract

The proto-diastolic third heart sound (S3) is observed in various hemodynamic conditions in both normal and diseased hearts. We propose a novel, one-degree of freedom mathematical model of mechanical vibrations of heart and blood that generates the third heart sound, implemented in a real-time model of the cardiovascular system (CircAdapt). To examine model functionality, S3 simulations were performed for conditions mimicking the normal heart as well as heart failure with preserved ejection fraction (HFpEF), atrioventricular valve regurgitation (AVR), atrioventricular valve stenosis (AVS) and septal shunts (SS). Simulated S3 showed both qualitative and quantitative agreements with measured S3 in terms of morphology, frequency, and timing. It was shown that ventricular mass, ventricular viscoelastic properties as well as inflow momentum play a key role in the generation of S3. The model indicated that irrespective of cardiac conditions, S3 vibrations are always generated, in both the left and right sides of the heart, albeit at different levels of audibility. S3 intensities increased in HFpEF, AVR and SS, but the changes of acoustic S3 features in AVS were not significant, as compared with the reference simulation. S3 loudness in all simulated conditions was proportional to the level of cardiac output and severity of cardiac conditions. In conclusion, our hemodynamics-driven mathematical model provides a fast and realistic simulation of S3 under various conditions which may be helpful to find new indicators for diagnosis and prognosis of cardiac diseases.

摘要

舒张早期第三心音(S3)在正常和患病心脏的各种血流动力学状态下均可观察到。我们提出了一种新颖的、单自由度的心脏和血液机械振动数学模型,该模型可产生第三心音,并在心血管系统实时模型(CircAdapt)中得以实现。为检验模型功能,针对模拟正常心脏以及射血分数保留的心力衰竭(HFpEF)、房室瓣反流(AVR)、房室瓣狭窄(AVS)和室间隔分流(SS)的情况进行了S3模拟。模拟的S3在形态、频率和时间方面与测量的S3在定性和定量上均相符。结果表明,心室质量、心室粘弹性特性以及流入动量在S3的产生中起关键作用。该模型表明,无论心脏状况如何,心脏左右两侧都会产生S3振动,尽管可听度不同。与参考模拟相比,HFpEF、AVR和SS中的S3强度增加,但AVS中声学S3特征的变化不显著。所有模拟条件下的S3响度与心输出量水平和心脏疾病严重程度成正比。总之,我们的血流动力学驱动数学模型可在各种条件下快速且逼真地模拟S3,这可能有助于寻找心脏病诊断和预后的新指标。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/985e/9595280/ad943803678b/fphys-13-847164-g001.jpg

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