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A mathematical model of CO2 effect on cardiovascular regulation.

机译:二氧化碳对心血管调节作用的数学模型。

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摘要

The effect of changes in arterial CO2 tension on the cardiovascular system is analyzed by means of a mathematical model. The model is an extension of a previous one that already incorporated the main reflex and local mechanisms triggered by O2 changes. The new aspects covered by the model are the O2-CO2 interaction at the peripheral chemoreceptors, the effect of local CO2 changes on peripheral resistances, the direct central neural system (CNS) response to CO2, and the control of central chemoreceptors on ventilation and tidal volume. A statistical comparison between model simulation results and various experimental data has been performed. This comparison suggests that the model is able to simulate the acute cardiovascular response to changes in blood gas content in a variety of conditions (normoxic hypercapnia, hypercapnia during artificial ventilation, hypocapnic hypoxia, and hypercapnic hypoxia). The model ascribes the observed responses to the complex superimposition of many mechanisms simultaneously working (baroreflex, peripheral chemoreflex, CNS response, lung-stretch receptors, local gas tension effect), which may be differently activated depending on the specific stimulus under study. However, although some experiments can be reproduced using a single basal set of parameters, reproduction of other experiments requires a different combination of the mechanism strengths (particularly, a different strength of the local CO2 mechanism on peripheral resistances and of the CNS response to CO2). Starting from these results, some assumptions to explain the striking differences reported in the literature are presented. The model may represent a valid support for the interpretation of physiological data on acute cardiovascular regulation and may favor the synthesis of contradictory results into a single theoretical setting.
机译:通过数学模型分析了动脉CO2张力变化对心血管系统的影响。该模型是先前模型的扩展,该模型已经合并了由氧气变化触发的主要反射和局部机制。该模型涵盖的新方面是外周化学感受器上的O2-CO2相互作用,局部CO2变化对外周阻力的影响,对CO2的直接中枢神经系统(CNS)反应以及对通气和潮气的中央化学感受器的控制卷。在模型仿真结果和各种实验数据之间进行了统计比较。这种比较表明,该模型能够模拟在各种情况下(正常氧血症,高碳酸血症,人工通气中的高碳酸血症,低碳酸血症性低氧和高碳酸血症性低氧)对血气含量变化的急性心血管反应。该模型将观察到的对许多同时起作用的机制的复杂叠加(压力反射,周围化学反射,中枢神经系统反应,肺舒张受体,局部气体张力效应)的复杂响应归因于不同的刺激,具体取决于所研究的特定刺激。但是,尽管某些实验可以使用一个基本参数集进行复制,但其他实验的复制则需要机制强度的不同组合(特别是局部CO2机制对外周阻力的不同强度以及CNS对CO2的响应的强度) 。从这些结果出发,提出了一些假设来解释文献中报道的惊人差异。该模型可能代表对急性心血管调节的生理数据的解释的有效支持,并且可能有助于将矛盾的结果综合到单个理论背景中。

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