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首页> 外文期刊>Journal of Neurophysiology >Current flow in vibrissa motor cortex can phase-lock with exploratory rhythmic whisking in rat.
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Current flow in vibrissa motor cortex can phase-lock with exploratory rhythmic whisking in rat.

机译:触须运动皮层中的电流可以与大鼠的探索性有节奏的搅动锁相。

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摘要

Rats explore their environment with rhythmic sweeps of their mystacial vibrissae in the range of 5-15 Hz. We tested if vibrissa primary motor (M1) cortex produces electrical activity that locks to this behavioral output. Rats were trained to whisk in air in search of a food reward. The EMG of the mystacial pad served as a surrogate of vibrissa position, while chronically implanted, 16-channel Si-based probes provided a record of field potentials throughout the depth of vibrissa M1 cortex as well as vibrissa primary somatosensory (S1) cortex. The measured potentials were used to estimate the current source density along the radial axis. We observed that current flow throughout the depth of M1 cortex is coherent with the mystacial EMG, i.e., the two signals co-vary with a defined phase relation. This coherence persists after transection of the infraorbital branch (IoN) of the trigeminal nerve, which provides the sole sensory input from the vibrissae. Furthermore, current flow in vibrissa S1 cortex that is coherent with the mystacial EMG also persists after transection of the IoN, consistent with anatomical pathways between M1 and S1. In combination with a previous observation that rhythmic, intracortical microstimulation of vibrissa M1 cortex can drive normal whisking motion, the present data support the hypothesis that, in principle, M1 cortex can initiate motion of the vibrissae on a cycle-by-cycle basis.
机译:大鼠通过对5-15 Hz范围内的神秘肌触毛进行有节奏的扫描来探索环境。我们测试了触须初级电动机(M1)皮质是否产生电活动,从而锁定了此行为输出。训练大鼠在空中拂尘以寻求食物奖励。肌无力垫的肌电图可作为vi触位置的替代物,而长期植入的基于16通道Si的探针可提供沿触须M1皮层以及触觉原代体感(S1)皮层深度的场电势记录。测量的电势用于估计沿径向轴的电流源密度。我们观察到整个M1皮质深度的电流与神秘肌电图是连贯的,即两个信号以定义的相位关系共变。这种连贯性在三叉神经的眶下分支(IoN)横切后仍然存在,这提供了来自触须的唯一感觉输入。此外,与I1N横切后,与神秘肌电图一致的S1触须皮层中的电流也持续存在,这与M1和S1之间的解剖学路径一致。结合先前的观察结果,即对节律性M1皮质进行有节律的皮质内微刺激可以驱动正常的拂动运动,目前的数据支持以下假设:原则上,M1皮质可以逐周期启动触须的运动。

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