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人体血液循环的闭环多尺度计算模型。在心冲击图中的应用。

Closed-Loop Multiscale Computational Model of Human Blood Circulation. Applications to Ballistocardiography.

作者信息

Rabineau Jeremy, Nonclercq Antoine, Leiner Tim, van de Borne Philippe, Migeotte Pierre-Francois, Haut Benoit

机构信息

TIPs, Université Libre de Bruxelles, Brussels, Belgium.

LPHYS, Université Libre de Bruxelles, Brussels, Belgium.

出版信息

Front Physiol. 2021 Dec 9;12:734311. doi: 10.3389/fphys.2021.734311. eCollection 2021.

Abstract

Cardiac mechanical activity leads to periodic changes in the distribution of blood throughout the body, which causes micro-oscillations of the body's center of mass and can be measured by ballistocardiography (BCG). However, many of the BCG findings are based on parameters whose origins are poorly understood. Here, we generate simulated multidimensional BCG signals based on a more exhaustive and accurate computational model of blood circulation than previous attempts. This model consists in a closed loop 0D-1D multiscale representation of the human blood circulation. The 0D elements include the cardiac chambers, cardiac valves, arterioles, capillaries, venules, and veins, while the 1D elements include 55 systemic and 57 pulmonary arteries. The simulated multidimensional BCG signal is computed based on the distribution of blood in the different compartments and their anatomical position given by whole-body magnetic resonance angiography on a healthy young subject. We use this model to analyze the elements affecting the BCG signal on its different axes, allowing a better interpretation of clinical records. We also evaluate the impact of filtering and healthy aging on the BCG signal. The results offer a better view of the physiological meaning of BCG, as compared to previous models considering mainly the contribution of the aorta and focusing on longitudinal acceleration BCG. The shape of experimental BCG signals can be reproduced, and their amplitudes are in the range of experimental records. The contributions of the cardiac chambers and the pulmonary circulation are non-negligible, especially on the lateral and transversal components of the velocity BCG signal. The shapes and amplitudes of the BCG waveforms are changing with age, and we propose a scaling law to estimate the pulse wave velocity based on the time intervals between the peaks of the acceleration BCG signal. We also suggest new formulas to estimate the stroke volume and its changes based on the BCG signal expressed in terms of acceleration and kinetic energy.

摘要

心脏的机械活动会导致全身血液分布的周期性变化,这会引起身体质心的微小振荡,并且可以通过心冲击图(BCG)进行测量。然而,许多BCG的研究结果是基于一些其起源尚不清楚的参数。在此,我们基于一个比以往尝试更详尽、更精确的血液循环计算模型生成模拟的多维BCG信号。该模型由人体血液循环的闭环0D-1D多尺度表示组成。0D元素包括心脏腔室、心脏瓣膜、小动脉、毛细血管、小静脉和静脉,而1D元素包括55条体动脉和57条肺动脉。模拟的多维BCG信号是根据健康年轻受试者全身磁共振血管造影给出的不同腔室中的血液分布及其解剖位置计算得出的。我们使用这个模型来分析影响BCG信号不同轴的因素,从而能更好地解读临床记录。我们还评估了滤波和健康衰老对BCG信号的影响。与之前主要考虑主动脉贡献并聚焦于纵向加速度BCG的模型相比,这些结果能更好地展现BCG的生理意义。实验BCG信号的形状可以被重现,并且其幅度在实验记录的范围内。心脏腔室和肺循环的贡献不可忽略,特别是在速度BCG信号的横向和纵向分量上。BCG波形的形状和幅度会随着年龄变化,并且我们提出了一个标度律,基于加速度BCG信号峰值之间的时间间隔来估计脉搏波速度。我们还提出了新的公式,基于以加速度和动能表示的BCG信号来估计每搏输出量及其变化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5961/8697684/bed2c8be7737/fphys-12-734311-g001.jpg

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