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首页> 外文期刊>Autonomic neuroscience: basic & clinical >Mathematical modeling of cardiovascular coupling: Central autonomic commands and baroreflex control.
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Mathematical modeling of cardiovascular coupling: Central autonomic commands and baroreflex control.

机译:心血管耦合的数学模型:中央自主神经命令和压力反射控制。

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摘要

The cross-correlation function (CCF) yields the correlation coefficient between spontaneous fluctuations of heart period and blood pressure as a function of the time shift between these variables. Two CCF patterns occur in humans: I) positive correlation between heart period and previous pressure values; II) negative correlation between heart period and subsequent pressure values. These patterns may result from the baroreflex and central autonomic commands (CAC), respectively. The aim of this study was to test this interpretation with a non-linear mathematical model of the human cardiovascular system. CAC were modeled as either phasic changes or random fluctuations of vagal and sympathetic activities with opposite sign. CCF pattern I resulted from baroreflex buffering of blood pressure changes elicited by vascular resistance fluctuations. When cardiac baroreflex control was absent or outweighed by CAC to the heart, simulations resulted in CCF pattern II only. In intermediate conditions when cardiac baroreflex interacted with CAC to the heart, CCF patterns I and II coexisted because the coupling between heart period and blood pressure varied with time. CAC to the heart decreased in magnitude the correlation coefficient and lengthened the time shift of CCF pattern I, thus apparently slowing and blunting baroreflex effects. Conversely, the baroreflex decreased in magnitude the correlation coefficient of CCF pattern II, thus blunting CAC effects. These results provide theoretical evidence in favor of application of the CCF analysis to investigate the balance between central autonomic and baroreflex cardiac control.
机译:互相关函数(CCF)得出心率与血压的自发波动之间的相关系数,作为这些变量之间时间偏移的函数。在人类中会出现两种CCF模式:I)心脏周期与以前的压力值之间呈正相关; II)心脏周期与随后的压力值之间呈负相关。这些模式可能分别来自压力反射和中央自主神经命令(CAC)。这项研究的目的是通过人类心血管系统的非线性数学模型来检验这种解释。 CAC被建模为具有相反体征的迷走神经和交感神经活动的相变或随机波动。 CCF模式I是由于血管阻力波动引起的压力变化的压力反射缓冲而产生的。当不存在心脏压力反射控制或CAC对心脏的压力超过心脏压力反射控制时,模拟仅产生CCF模式II。在心脏压力反射与CAC相互作用到心脏的中间条件下,CCF模式I和II共存,因为心脏周期和血压之间的耦合随时间变化。到心脏的CAC的幅度降低了相关系数,并延长了CCF模式I的时间偏移,从而明显减缓了压力反射效应并使其变钝。相反,压力反射减小了CCF模式II的相关系数,从而减弱了CAC效应。这些结果提供了理论证据,有利于应用CCF分析来研究中枢自主神经和压力反射性心脏控制之间的平衡。

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