Local field potential journey into the Basal Ganglia

Eitan E. Asher , Maya Slovik , Rea Mitelman , Hagai Bergman , Shlomo Havlin , Shay Moshel
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Abstract

Local field potentials (LFP) in the basal ganglia (BG) have attracted considerable research and clinical interest. The genesis of these signals has been a topic of extensive discourse, focusing on whether they are a manifestation of local synaptic activity or result from the propagation of electrical signals through tissue, as described by the Maxwell equations (volume conduction). To investigate this, we conducted simultaneous recordings of LFPs from two cortical areas— the dorsolateral prefrontal cortex (DLPFC) and the primary motor cortex (M1)—and various sites within the BG nuclei in an awake, non-task-engaged non-human primate (NHP). Employing innovative analytical techniques, we discerned significant cross-correlations indicative of potential connections, while filtering out non-significant correlations. This allowed us to differentiate between synaptic inputs and volume conduction. Our findings indicate two distinct propagation pathways of BG field potentials emanating from the M1 and the DLPFC, each characterized by different temporal delays. The results imply that these anatomical pathways are differentially influenced by the mechanisms of volume conduction and synaptic transmission. Notably, the M1 exhibits more functional links with non-zero-time delays to the BG structures, while the DLPFC-BG connections are marked by zero-time delays, suggesting a predominance of volume conduction effects. Consequently, investigations into the origins of BG LFP should account for the distinct anatomical pathways linking the cortex and the BG, as they differentially represent information flow and volume conductance.

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进入基底神经节的局部场电位之旅
基底神经节(BG)的局部场电位(LFP)引起了相当多的研究和临床兴趣。这些信号的成因一直是人们广泛讨论的话题,重点在于它们是局部突触活动的表现,还是麦克斯韦方程(体积传导)所描述的电信号在组织中传播的结果。为了探究这个问题,我们在一只清醒的非人灵长类动物(NHP)身上同时记录了两个皮层区域(背外侧前额叶皮层(DLPFC)和初级运动皮层(M1))以及 BG 核内不同部位的 LFPs。利用创新的分析技术,我们发现了表明潜在联系的重要交叉相关性,同时过滤掉了不重要的相关性。这使我们能够区分突触输入和体积传导。我们的研究结果表明,来自 M1 和 DLPFC 的 BG 场电位有两种不同的传播途径,各自具有不同的时间延迟。这些结果表明,这些解剖路径受到体积传导和突触传递机制的不同影响。值得注意的是,M1与BG结构的非零时间延迟功能联系较多,而DLPFC与BG的联系则以零时间延迟为特征,这表明体积传导效应占主导地位。因此,在研究 BG LFP 的起源时,应考虑到连接大脑皮层和 BG 的不同解剖通路,因为它们在信息流和体积传导方面存在差异。
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