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Quantitative analysis of cardiovascular modulation in respiratory neural activity

机译:呼吸神经活动中心血管调节的定量分析

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摘要

We propose the ‘δ2-statistic’ for assessing the magnitude and statistical significance of arterial pulse-modulated activity of single neurones and present the results of applying this tool to medullary respiratory-modulated units. This analytical tool is a modification of the η2-statistic and, consequently, based on the analysis of variance. The η2-statistic reflects the consistency of respiratory-modulated activity on a cycle-by-cycle basis. However, directly applying this test to activity during the cardiac cycle proved ineffective because subjects-by-treatments matrices did not contain enough ‘information’. We increased information by dividing the cardiac cycle into fewer bins, excluding cycles without activity and summing activity over multiple cycles. The analysed neuronal activity was an existing data set examining the neural control of respiration and cough. Neurones were recorded in the nuclei of the solitary tracts, and in the rostral and caudal ventral respiratory groups of decerebrate, neuromuscularly blocked, ventilated cats (n= 19). Two hundred of 246 spike trains were respiratory modulated; of these 53% were inspiratory (I), 36.5% expiratory (E), 6% IE phase spanning and 4.5% EI phase spanning and responsive to airway stimulation. Nearly half (n= 96/200) of the respiratory-modulated units were significantly pulse modulated and 13 were highly modulated with δ2 values exceeding 0.3. In 10 of these highly modulated units, η2 values were greater than 0.3 and all 13 had, at least, a portion of their activity during expiration. We conclude that cardiorespiratory interaction is reciprocal; in addition to respiratory-modulated activity in a subset of neuronal activity patterns controlling the cardiovascular system, pulse-modulated activity exists in a subset of neuronal activity patterns controlling the respiratory system. Thus, cardio-ventilatory coupling apparent in respiratory motor output is evident and, perhaps, derived from the neural substrate driving that output.
机译:我们建议使用“δ 2 -统计量”来评估单个神经元的动脉搏动调节活动的幅度和统计意义,并提出将该工具应用于延髓性呼吸调节单元的结果。此分析工具是对η 2 统计量的修改,因此是基于方差分析的。 η 2 统计量逐周期反映呼吸调节活性的一致性。但是,直接将这种测试应用于心动周期的活动被证明是无效的,因为按治疗对象划分的矩阵没有足够的“信息”。我们通过将心动周期划分为更少的区域来增加信息,不包括无活动的周期并在多个周期内累加活动。分析的神经元活动是检查呼吸和咳嗽的神经控制的现有数据集。神经元被记录在孤立的神经核,被神经肌肉阻塞的通气猫(n = 19)的大脑的孤立道的核以及尾部和尾部腹侧呼吸组中。 246个峰值列车中的200个受到了呼吸调节。在这53%中,吸气(I),呼气(E)为36.5%,IE期跨度为6%,EI期跨度为4.5%,并对气道刺激有反应。呼吸调节单元中近一半(n = 96/200)进行了明显的脉冲调制,而δ 2 值超过0.3时,进行了高度调制。在这些高度调制的单元中的10个中,η 2 值大于0.3,并且全部13个在呼气期间至少具有一部分活性。我们得出结论,心肺互动是相互的;除了在控制心血管系统的神经元活动模式的子集中的呼吸调节活动之外,在控制呼吸系统的神经元活动模式的子集中存在脉冲调制的活动。因此,在呼吸运动输出中明显的心室-心室耦合是明显的,并且可能源自驱动该输出的神经基质。

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