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与自由活动大鼠的运动和皮质唤醒状态相关的迷走神经棘波活动。

Vagus nerve spiking activity associated with locomotion and cortical arousal states in a freely moving rat.

机构信息

Laboratory of Chemical Pharmacology, Graduate School of Pharmaceutical Sciences, The University of Tokyo, Tokyo, Japan.

Center for Information and Neural Networks, Suita City, Osaka, Japan.

出版信息

Eur J Neurosci. 2019 May;49(10):1298-1312. doi: 10.1111/ejn.14275. Epub 2018 Dec 8.

Abstract

The vagus nerve serves as a central pathway for communication between the central and peripheral organs. Despite traditional knowledge of vagus nerve functions, detailed neurophysiological dynamics of the vagus nerve in naïve behavior remain to be understood. In this study, we developed a new method to record spiking patterns from the cervical vagus nerve while simultaneously monitoring central and peripheral organ bioelectrical signals in a freely moving rat. When the rats transiently elevated locomotor activity, the frequency of vagus nerve spikes was correspondingly increased, and this activity was retained for several seconds after the increase in running speed terminated. Spike patterns of the vagus nerve were not robustly associated with which arms the animals entered on an elevated plus maze. During sniffing behavior, vagus nerve spikes were nearly absent. During stopping, the vagus nerve spike patterns differed considerably depending on external contexts and peripheral activity states associated with cortical arousal levels. Stimulation of the vagus nerve altered rat's running speed and cortical arousal states depending on running speed at the instant of stimulation. These observations are a new step for uncovering the physiological dynamics of the vagus nerve modulating the visceral organs such as cardiovascular, respiratory, and gastrointestinal systems.

摘要

迷走神经作为中枢和外周器官之间通讯的中枢途径。尽管人们对迷走神经功能有传统的认识,但在自然行为中,迷走神经的详细神经生理动力学仍有待了解。在这项研究中,我们开发了一种新方法,可以在自由活动的大鼠中同时记录颈迷走神经的放电模式,同时监测中枢和外周器官的生物电信号。当大鼠短暂地增加运动活动时,迷走神经的放电频率相应增加,并且在跑步速度增加终止后,这种活动会持续几秒钟。迷走神经的放电模式与动物进入高架十字迷宫的手臂没有很强的关联。在嗅探行为中,迷走神经的放电几乎不存在。在停止时,迷走神经的放电模式根据与皮质唤醒水平相关的外部环境和外周活动状态而有很大差异。迷走神经刺激根据刺激时的跑步速度改变大鼠的跑步速度和皮质唤醒状态。这些观察结果是揭示迷走神经调节心血管、呼吸和胃肠道等内脏器官的生理动力学的新步骤。

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