首页> 美国卫生研究院文献>Journal of Neurophysiology >Pontine–Ventral Respiratory Column Interactions Through Raphé Circuits Detected Using Multi-Array Spike Train Recordings
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Pontine–Ventral Respiratory Column Interactions Through Raphé Circuits Detected Using Multi-Array Spike Train Recordings

机译:通过多阵列尖峰火车记录检测到的通过拉斐回路进行的庞廷-中央呼吸柱相互作用

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摘要

Recently, Segers et al. identified functional connectivity between the ventrolateral respiratory column (VRC) and the pontine respiratory group (PRG). The apparent sparseness of detected paucisynaptic interactions motivated consideration of other potential functional pathways between these two regions. We report here evidence for “indirect” serial functional linkages between the PRG and VRC via intermediary brain stem midline raphé neurons. Arrays of microelectrodes were used to record sets of spike trains from a total of 145 PRG, 282 VRC, and 340 midline neurons in 11 decerebrate, vagotomized, neuromuscularly blocked, ventilated cats. Spike trains of 13,843 pairs of neurons that included at least one raphé cell were screened for respiratory modulation and short-time scale correlations. Significant correlogram features were detected in 7.2% of raphé–raphé (291/4,021), 4.3% of VRC–raphé (292/6,755), and 4.0% of the PRG–raphé (124/3,067) neuron pairs. Central peaks indicative of shared influences were the most common feature in correlations between pairs of raphé neurons, whereas correlated raphé–PRG and raphé–VRC neuron pairs displayed predominantly offset peaks and troughs, features suggesting a paucisynaptic influence of one neuron on the other. Overall, offset correlogram features provided evidence for 33 VRC-to-raphé-to-PRG and 45 PRG-to-raphé-to-VRC correlational linkage chains with one or two intermediate raphé neurons. The results support a respiratory network architecture with parallel VRC-to-PRG and PRG-to-VRC links operating through intervening midline circuits, and suggest that raphé neurons contribute to the respiratory modulation of PRG neurons and shape the respiratory motor pattern through coordinated divergent actions on both the PRG and VRC.
机译:最近,Segers等人。确定了腹侧呼吸柱(VRC)和桥脑呼吸组(PRG)之间的功能连接。检测到的突触相互作用的稀疏性促使考虑这两个区域之间的其他潜在功能途径。我们在这里报告PRG和VRC之间通过中间脑干中线拉菲神经元的“间接”系列功能联系的证据。微电极阵列用于记录11只去脑,迷走神经切断,经神经肌肉阻塞,通气的猫中总共145个PRG,282个VRC和340个中线神经元的峰值序列。筛选了包含至少一个raphé细胞的13,843对神经元的突波序列,以进行呼吸调节和短时比例相关。在7.2%的raphé-raphé(291 / 4,021),4.3%的VRC-raphé(292 / 6,755)和4.0%的PRG-raphé(124 / 3,067)神经元对中检测到显着的相关图特征。指示共有影响的中心峰是成对的拉斐神经元之间相关性中最常见的特征,而相关的拉斐-PRG和拉斐尔-VRC神经元对则主要表现出偏移的峰和谷,这表明一个神经元对另一神经元有突触影响。总体而言,偏移相关图特征提供了33个VRC到raphé到PRG和45个PRG到raphé到VRC的关联链接链的证据,这些链接链具有一个或两个中间的拉斐神经元。结果支持呼吸网络架构,其中VRC到PRG和PRG到VRC的并行链路通过中间的中线回路运行,并且表明,瑞波神经元有助于PRG神经元的呼吸调节,并通过协调的发散作用来塑造呼吸运动模式在PRG和VRC上。

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