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量化苍白球深部脑刺激激活和抑制的神经元件。

Quantifying the neural elements activated and inhibited by globus pallidus deep brain stimulation.

作者信息

Johnson Matthew D, McIntyre Cameron C

机构信息

Department of Biomedical Engineering, Cleveland Clinic Foundation, 9500 Euclid Avenue, ND20, Cleveland, OH, 44195, USA.

出版信息

J Neurophysiol. 2008 Nov;100(5):2549-63. doi: 10.1152/jn.90372.2008. Epub 2008 Sep 3.

Abstract

Deep brain stimulation (DBS) of the globus pallidus pars interna (GPi) is an effective therapy option for controlling the motor symptoms of medication-refractory Parkinson's disease and dystonia. Despite the clinical successes of GPi DBS, the precise therapeutic mechanisms are unclear and questions remain on the optimal electrode placement and stimulation parameter selection strategies. In this study, we developed a three-dimensional computational model of GPi-DBS in nonhuman primates to investigate how membrane channel dynamics, synaptic inputs, and axonal collateralization contribute to the neural responses generated during stimulation. We focused our analysis on three general neural elements that surround GPi-DBS electrodes: GPi somatodendritic segments, GPi efferent axons, and globus pallidus pars externa (GPe) fibers of passage. During high-frequency electrical stimulation (136 Hz), somatic activity in the GPi showed interpulse excitatory phases at 1-3 and 4-5.5 ms. When including stimulation-induced GABA(A) and AMPA receptor dynamics into the model, the somatic firing patterns continued to be entrained to the stimulation, but the overall firing rate was reduced (78.7 to 25.0 Hz, P < 0.001). In contrast, axonal output from GPi neurons remained largely time-locked to each pulse of the stimulation train. Similar entrainment was also observed in GPe efferents, a majority of which have been shown to project through GPi en route to the subthalamic nucleus. The models suggest that pallidal DBS may have broader network effects than previously realized and the modes of therapy may depend on the relative proportion of GPi and/or GPe efferents that are directly affected by the stimulation.

摘要

内侧苍白球(GPi)的深部脑刺激(DBS)是控制药物难治性帕金森病和肌张力障碍运动症状的一种有效治疗选择。尽管GPi DBS在临床上取得了成功,但其确切的治疗机制尚不清楚,关于最佳电极放置和刺激参数选择策略仍存在问题。在本研究中,我们建立了非人灵长类动物GPi-DBS的三维计算模型,以研究膜通道动力学、突触输入和轴突侧支如何影响刺激过程中产生的神经反应。我们将分析重点放在围绕GPi-DBS电极的三种一般神经元件上:GPi体树突段、GPi传出轴突和外侧苍白球(GPe)的穿行纤维。在高频电刺激(136 Hz)期间,GPi中的体细胞活动在1-3毫秒和4-5.5毫秒显示出脉冲间兴奋期。当将刺激诱导的GABA(A)和AMPA受体动力学纳入模型时,体细胞放电模式继续与刺激同步,但总体放电率降低(从78.7 Hz降至25.0 Hz,P < 0.001)。相比之下,GPi神经元的轴突输出在很大程度上仍与刺激序列的每个脉冲时间锁定。在GPe传出纤维中也观察到类似的同步,其中大多数已被证明在投射到丘脑底核的途中穿过GPi。这些模型表明,苍白球DBS可能具有比以前认识到的更广泛的网络效应,治疗模式可能取决于直接受刺激影响的GPi和/或GPe传出纤维的相对比例。

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本文引用的文献

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Pallidal burst activity during therapeutic deep brain stimulation.治疗性脑深部电刺激期间的苍白球爆发活动。
Exp Neurol. 2008 May;211(1):243-51. doi: 10.1016/j.expneurol.2008.01.032. Epub 2008 Feb 20.
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Effects of GPi stimulation on human thalamic neuronal activity.苍白球内侧部刺激对人丘脑神经元活动的影响。
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