Confronting a cardiovascular system model with heart rate and blood pressure data

P. McSharry, M. Mcguinness, A. Fowler
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引用次数: 14

Abstract

The cardiovascular system may be investigated by observing fluctuations in the heart rate, blood pressure and rate of respiration. Its time evolution is governed by the baroreflex control mechanism, where the sympathetic and vagal nerves compete to increase and decrease the heart rate respectively. A nonlinear delay-differential equation model is constructed to describe this control mechanism and to explore the interactions between the heart rate and blood pressure. In this model, a time delay gives rise to the oscillations in the blood pressure known as Mayer waves. The model maintains an intrinsically stable heart rate in the absence of nervous control, and features baroreflex influence on both heart rate and peripheral resistance. The effect of respiratory sinus arrhythmia (RSA) is introduced using a sinusoidal driving component. Clinical recordings obtained by carefully controlling the rate and depth of respiration are used to test the suitability of the model for representing the complicated physiology of the cardiovascular system. The model is shown to be able to reproduce many of the empirical characteristics observed in these biomedical signals, including RSA, Mayer waves and synchronization. Key physiological parameters in the model, including the time delay and levels of sympathetic and vagal activity, could provide useful diagnostic information about the state of the cardiovascular system
面对心率和血压数据的心血管系统模型
心血管系统可以通过观察心率、血压和呼吸频率的波动来研究。它的时间演化受压反射控制机制支配,其中交感神经和迷走神经分别竞争增加和降低心率。建立了一个非线性延迟微分方程模型来描述这种控制机制,并探讨了心率和血压之间的相互作用。在这个模型中,时间延迟会引起血压的振荡,即梅耶波。该模型在没有神经控制的情况下保持固有稳定的心率,并对心率和外周阻力均具有压力反射影响。利用正弦驱动分量介绍了呼吸性窦性心律失常(RSA)的作用。通过仔细控制呼吸速率和深度获得的临床记录用于测试模型是否适合代表心血管系统的复杂生理。该模型被证明能够再现在这些生物医学信号中观察到的许多经验特征,包括RSA、迈耶波和同步。模型中的关键生理参数,包括交感神经和迷走神经活动的时间延迟和水平,可以提供关于心血管系统状态的有用诊断信息
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