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丘脑腹中间核深部脑刺激治疗原发性震颤可改善运动序列学习。

Deep brain stimulation of the ventrointermediate nucleus of the thalamus to treat essential tremor improves motor sequence learning.

机构信息

Neurocybernetics and Rehabilitation, Department of Neurology, Otto von Guericke University Magdeburg, Magdeburg, Germany.

Ernst Strüngmann Institute for Neuroscience in Cooperation with Max Planck Society, Frankfurt, Germany.

出版信息

Hum Brain Mapp. 2022 Oct 15;43(15):4791-4799. doi: 10.1002/hbm.25989. Epub 2022 Jul 6.

Abstract

The network of brain structures engaged in motor sequence learning comprises the same structures as those involved in tremor, including basal ganglia, cerebellum, thalamus, and motor cortex. Deep brain stimulation (DBS) of the ventrointermediate nucleus of the thalamus (VIM) reduces tremor, but the effects on motor sequence learning are unknown. We investigated whether VIM stimulation has an impact on motor sequence learning and hypothesized that stimulation effects depend on the laterality of electrode location. Twenty patients (age: 38-81 years; 12 female) with VIM electrodes implanted to treat essential tremor (ET) successfully performed a serial reaction time task, varying whether the stimuli followed a repeating pattern or were selected at random, during which VIM-DBS was either on or off. Analyses of variance were applied to evaluate motor sequence learning performance according to reaction times (RTs) and accuracy. An interaction was observed between whether the sequence was repeated or random and whether VIM-DBS was on or off (F[1,18] = 7.89, p = .012). Motor sequence learning, reflected by reduced RTs for repeated sequences, was greater with DBS on than off (T[19] = 2.34, p = .031). Stimulation location correlated with the degree of motor learning, with greater motor learning when stimulation targeted the lateral VIM (n = 23, ρ = 0.46; p = .027). These results demonstrate the beneficial effects of VIM-DBS on motor sequence learning in ET patients, particularly with lateral VIM electrode location, and provide evidence for a role for the VIM in motor sequence learning.

摘要

参与运动序列学习的大脑结构网络包括与震颤相关的相同结构,包括基底神经节、小脑、丘脑和运动皮层。丘脑腹中间核(VIM)的深部脑刺激(DBS)可减少震颤,但对运动序列学习的影响尚不清楚。我们研究了 VIM 刺激是否对运动序列学习有影响,并假设刺激效果取决于电极位置的偏侧性。20 名患者(年龄:38-81 岁;12 名女性)因特发性震颤(ET)植入 VIM 电极成功地进行了一项序列反应时间任务,任务中刺激是遵循重复模式还是随机选择,在此期间 VIM-DBS 开启或关闭。方差分析用于根据反应时间(RT)和准确性评估运动序列学习表现。观察到序列是重复的还是随机的以及 VIM-DBS 是开启还是关闭之间存在交互作用(F[1,18] = 7.89,p =.012)。与 DBS 关闭相比,DBS 开启时,运动序列学习表现为重复序列的 RT 降低(T[19] = 2.34,p =.031)。刺激位置与运动学习程度相关,当刺激目标是外侧 VIM 时,运动学习程度更大(n = 23,ρ = 0.46;p =.027)。这些结果表明 VIM-DBS 对 ET 患者运动序列学习有有益影响,特别是在外侧 VIM 电极位置时,为 VIM 在运动序列学习中的作用提供了证据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0200/9491285/d6424e0b13b9/HBM-43-4791-g003.jpg

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