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Spatial localization of sources in the rat subthalamic motor region using an inverse current source density method

机译:用逆电流源密度法在大鼠丘脑下运动区中源的空间定位

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摘要

Objective: In this study we introduce the use of the current source density (CSD) method as a way to visualize the spatial organization of evoked responses in the rat subthalamic nucleus (STN) at fixed time stamps resulting from motor cortex stimulation. This method offers opportunities to visualize neuronal input and study the relation between the synaptic input and the neural output of neural populations. Approach: Motor cortex evoked local field potentials and unit activity were measured in the subthalamic region, with a 3D measurement grid consisting of 320 measurement points and high spatial resolution. This allowed us to visualize the evoked synaptic input by estimating the current source density (CSD) from the measured local field potentials, using the inverse CSD method. At the same time, the neuronal output of the cells within the grid is assessed by calculating post stimulus time histograms. Main results: The CSD method resulted in clear and distinguishable sources and sinks of the neuronal input activity in the STN after motor cortex stimulation. We showed that the center of the synaptic input of the STN from the motor cortex is located dorsal to the input from globus pallidus. Significance: For the first time we have performed CSD analysis on motor cortex stimulation evoked LFP responses in the rat STN as a proof of principle. Our results suggest that the CSD method can be used to gain new insights into the spatial extent of synaptic pathways in brain structures.
机译:目的:在这项研究中,我们介绍使用电流源密度(CSD)方法,以可视化方式在运动皮层刺激产生的固定时间戳下,对大鼠丘脑丘脑底核(STN)诱发反应的空间组织进行可视化。该方法为可视化神经元输入以及研究突触输入与神经种群的神经输出之间的关系提供了机会。方法:使用3D测量网格(由320个测量点和高空间分辨率组成)在丘脑下区域测量运动皮质诱发的局部场电势和单位活动。这使我们能够通过使用逆CSD方法从测量的局部场电势中估算电流源密度(CSD)来可视化诱发的突触输入。同时,通过计算刺激后时间直方图评估网格内细胞的神经元输出。主要结果:CSD方法导致运动皮层刺激后,STN中神经元输入活动的来源清晰可辨。我们表明,来自运动皮层的STN突触输入的中心位于苍白球输入的背面。启示:我们首次对运动皮层刺激引起的大鼠STN中的LFP反应进行了CSD分析,以此作为原理证明。我们的结果表明,CSD方法可用于获得对大脑结构中突触途径空间范围的新见解。

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