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人类皮质-基底神经节网络的微观电生理学功能连接。

Microscale electrophysiological functional connectivity in human cortico-basal ganglia network.

机构信息

College of Medicine-Phoenix, University of Arizona, Phoenix, AZ 85004, USA; School of Biological Health Systems Engineering, Arizona State University, Tempe, AZ 85281, USA.

School of Biological Health Systems Engineering, Arizona State University, Tempe, AZ 85281, USA.

出版信息

Clin Neurophysiol. 2022 Oct;142:11-19. doi: 10.1016/j.clinph.2022.06.017. Epub 2022 Jul 16.

Abstract

OBJECTIVE

We investigated the electrophysiological relationships in the cortico-basal ganglia network on a sub-centimeter scale to increase our understanding of neural functional relationships in Parkinson's disease (PD).

METHODS

Data was intraoperatively recorded from 2 sources in the human brain-a microelectrode in the subthalamic nucleus (STN) and a micro-electrocorticography grid on the motor association cortex-during bilateral deep brain stimulation (DBS) electrode placement. STN neurons and local field potential (LFP) were defined as functionally connected when the 99.7% confidence intervals of the action potential (AP)-aligned average LFP and control did not overlap.

RESULTS

APs from STN neurons were functionally connected to the STN LFP for 18/46 STN neurons. This functional connection was observed between STN neuron APs and cortical LFP for 25/46 STN neurons. The cortical patterns of electrophysiological functional connectivity differed for each neuron.

CONCLUSIONS

A subset of single neurons in the STN exhibited functional connectivity with electrophysiological activity in the STN and at a distance with the motor association cortex surveyed on a sub-centimeter spatial scale. These connections show a per neuron differential topography on the cortex.

SIGNIFICANCE

The cortico-basal ganglia circuit is organized on a sub-centimeter scale, and plays an important role in the mechanisms of PD and DBS.

摘要

目的

我们在亚厘米尺度上研究了皮质-基底节网络中的电生理关系,以增进我们对帕金森病(PD)中神经功能关系的理解。

方法

在双侧深部脑刺激(DBS)电极放置过程中,从人脑的两个来源记录数据-丘脑底核(STN)中的微电极和运动联合皮层上的微电极-皮层电图网格。当动作电位(AP)对齐平均 LFPs 和对照的 99.7%置信区间不重叠时,将 STN 神经元和局部场电位(LFP)定义为功能连接。

结果

STN 神经元的 AP 与 18/46 个 STN 神经元的 STN LFP 具有功能连接。这种功能连接在 25/46 个 STN 神经元的 STN 神经元 AP 和皮层 LFP 之间观察到。每个神经元的电生理功能连接的皮层模式都不同。

结论

STN 中的一组单个神经元表现出与 STN 中电生理活动的功能连接,并与在亚厘米空间尺度上测量的运动联合皮层远距离连接。这些连接在皮层上显示出每个神经元的差异拓扑结构。

意义

皮质-基底节回路在亚厘米尺度上组织,在 PD 和 DBS 的机制中起重要作用。

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