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高频刺激对丘脑底核的持续突触抑制。

Persistent synaptic inhibition of the subthalamic nucleus by high frequency stimulation.

机构信息

Krembil Brain Institute, University Health Network, Canada; Department of Neurology, Charité-Universitätsmedizin Berlin, Germany; Berlin Institute of Health (BIH), Germany; Institute of Neurophysiology, Charité-Universitätsmedizin Berlin, Germany.

Department of Neurology, Charité-Universitätsmedizin Berlin, Germany.

出版信息

Brain Stimul. 2022 Sep-Oct;15(5):1223-1232. doi: 10.1016/j.brs.2022.08.020. Epub 2022 Sep 2.

Abstract

BACKGROUND

Deep brain stimulation (DBS) provides symptomatic relief in a growing number of neurological indications, but local synaptic dynamics in response to electrical stimulation that may relate to its mechanism of action have not been fully characterized.

OBJECTIVE

The objectives of this study were to (1) study local synaptic dynamics during high frequency extracellular stimulation of the subthalamic nucleus (STN), and (2) compare STN synaptic dynamics with those of the neighboring substantia nigra pars reticulata (SNr).

METHODS

Two microelectrodes were advanced into the STN and SNr of patients undergoing DBS surgery for Parkinson's disease (PD). Neuronal firing and evoked field potentials (fEPs) were recorded with one microelectrode during stimulation from an adjacent microelectrode.

RESULTS

Inhibitory fEPs could be discerned within the STN and their amplitudes predicted bidirectional effects on neuronal firing (p = .013). There were no differences between STN and SNr inhibitory fEP dynamics at low stimulation frequencies (p > .999). However, inhibitory neuronal responses were sustained over time in STN during high frequency stimulation but not in SNr (p < .001) where depression of inhibitory input was coupled with a return of neuronal firing (p = .003).

INTERPRETATION

Persistent inhibitory input to the STN suggests a local synaptic mechanism for the suppression of subthalamic firing during high frequency stimulation. Moreover, differences in the resiliency versus vulnerability of inhibitory inputs to the STN and SNr suggest a projection source- and frequency-specificity for this mechanism. The feasibility of targeting electrophysiologically-identified neural structures may provide insight into how DBS achieves frequency-specific modulation of neuronal projections.

摘要

背景

深部脑刺激(DBS)为越来越多的神经学适应证提供了症状缓解,但与电刺激相关的局部突触动力学,可能与它的作用机制有关,尚未得到充分描述。

目的

本研究的目的是:(1)研究在高频刺激丘脑底核(STN)时的局部突触动力学,(2)比较 STN 的突触动力学与相邻黑质网状部(SNr)的突触动力学。

方法

将两个微电极插入接受 DBS 手术治疗帕金森病(PD)的患者的 STN 和 SNr。在来自相邻微电极的刺激期间,使用一个微电极记录神经元放电和诱发的场电位(fEP)。

结果

可以在 STN 内辨别出抑制性 fEP,其振幅可预测对神经元放电的双向影响(p=0.013)。在低刺激频率下,STN 和 SNr 的抑制性 fEP 动力学没有差异(p>.999)。然而,在高频刺激期间,STN 中的抑制性神经元反应随时间持续存在,但在 SNr 中则没有(p<.001),在 SNr 中,抑制性输入的抑制与神经元放电的恢复相关(p=0.003)。

结论

对 STN 的持续抑制性输入表明,在高频刺激期间抑制 STN 放电存在局部突触机制。此外,STN 和 SNr 的抑制性输入的弹性与脆弱性之间的差异表明,这种机制具有投射源和频率特异性。针对电生理鉴定的神经结构进行靶向治疗的可行性,可能为深入了解 DBS 如何实现对神经元投射的频率特异性调节提供思路。

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