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浦肯野细胞异常放电产生高频幅度的动作性震颤,小脑深部电刺激可纠正该震颤。

Purkinje cell misfiring generates high-amplitude action tremors that are corrected by cerebellar deep brain stimulation.

机构信息

Department of Pathology and Immunology, Baylor College of Medicine, Houston, United States.

Department of Neuroscience, Baylor College of Medicine, Houston, United States.

出版信息

Elife. 2020 Mar 17;9:e51928. doi: 10.7554/eLife.51928.

Abstract

Tremor is currently ranked as the most common movement disorder. The brain regions and neural signals that initiate the debilitating shakiness of different body parts remain unclear. Here, we found that genetically silencing cerebellar Purkinje cell output blocked tremor in mice that were given the tremorgenic drug harmaline. We show in awake behaving mice that the onset of tremor is coincident with rhythmic Purkinje cell firing, which alters the activity of their target cerebellar nuclei cells. We mimic the tremorgenic action of the drug with optogenetics and present evidence that highly patterned Purkinje cell activity drives a powerful tremor in otherwise normal mice. Modulating the altered activity with deep brain stimulation directed to the Purkinje cell output in the cerebellar nuclei reduced tremor in freely moving mice. Together, the data implicate Purkinje cell connectivity as a neural substrate for tremor and a gateway for signals that mediate the disease.

摘要

震颤目前被列为最常见的运动障碍。引发不同身体部位衰弱震颤的大脑区域和神经信号仍不清楚。在这里,我们发现,通过基因沉默小脑浦肯野细胞的输出,可以阻断给予震颤原药物哈马灵的小鼠的震颤。我们在清醒活动的小鼠中表明,震颤的发作与浦肯野细胞有节奏的放电同时发生,这改变了它们的目标小脑核细胞的活动。我们通过光遗传学模拟了药物的震颤原作用,并提供了证据表明,高度模式化的浦肯野细胞活动在其他正常小鼠中引发强烈的震颤。用深部脑刺激调节靶向小脑核的浦肯野细胞输出的改变活动,减少了自由活动小鼠的震颤。总的来说,这些数据表明浦肯野细胞连接作为震颤的神经基础,以及介导疾病的信号的网关。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ec2d/7077982/a5968ad4d544/elife-51928-fig1-figsupp1.jpg

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