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人类丘脑和壳核中由废用驱动的可塑性。

Disuse-driven plasticity in the human thalamus and putamen.

作者信息

Chauvin Roselyne J, Newbold Dillan J, Nielsen Ashley N, Miller Ryland L, Krimmel Samuel R, Metoki Athanasia, Wang Anxu, Van Andrew N, Montez David F, Marek Scott, Suljic Vahdeta, Baden Noah J, Ramirez-Perez Nadeshka, Scheidter Kristen M, Monk Julia S, Whiting Forrest I, Adeyemo Babatunde, Snyder Abraham Z, Kay Benjamin P, Raichle Marcus E, Laumann Timothy O, Gordon Evan M, Dosenbach Nico U F

机构信息

Department of Neurology, Washington University School of Medicine, St. Louis, MO 63110.

Department of Neurology, New York University Grossman School of Medicine, New York, New York 10016, USA.

出版信息

bioRxiv. 2024 Jan 25:2023.11.07.566031. doi: 10.1101/2023.11.07.566031.

Abstract

Motor adaptation in cortico-striato-thalamo-cortical loops has been studied mainly in animals using invasive electrophysiology. Here, we leverage functional neuroimaging in humans to study motor circuit plasticity in the human subcortex. We employed an experimental paradigm that combined two weeks of upper-extremity immobilization with daily resting-state and motor task fMRI before, during, and after the casting period. We previously showed that limb disuse leads to decreased functional connectivity (FC) of the contralateral somatomotor cortex (SM1) with the ipsilateral somatomotor cortex, increased FC with the cingulo-opercular network (CON) as well as the emergence of high amplitude, fMRI signal pulses localized in the contralateral SM1, supplementary motor area and the cerebellum. From our prior observations, it remains unclear whether the disuse plasticity affects the thalamus and striatum. We extended our analysis to include these subcortical regions and found that both exhibit strengthened cortical FC and spontaneous fMRI signal pulses induced by limb disuse. The dorsal posterior putamen and the central thalamus, mainly CM, VLP and VIM nuclei, showed disuse pulses and FC changes that lined up with fmri task activations from the Human connectome project motor system localizer, acquired before casting for each participant. Our findings provide a novel understanding of the role of the cortico-striato-thalamo-cortical loops in human motor plasticity and a potential link with the physiology of sleep regulation. Additionally, similarities with FC observation from Parkinson Disease (PD) questions a pathophysiological link with limb disuse.

摘要

皮质-纹状体-丘脑-皮质环路中的运动适应性主要是在动物身上通过侵入性电生理学进行研究的。在此,我们利用人类功能神经成像技术来研究人类皮质下运动回路的可塑性。我们采用了一种实验范式,该范式将两周的上肢固定与在打石膏期间及之前、之后的每日静息态和运动任务功能磁共振成像相结合。我们之前表明,肢体废用会导致对侧躯体运动皮层(SM1)与同侧躯体运动皮层之间的功能连接(FC)降低,与扣带回-脑岛网络(CON)的FC增加,以及在对侧SM1、辅助运动区和小脑中出现高振幅的功能磁共振成像信号脉冲。从我们之前的观察来看,尚不清楚废用可塑性是否会影响丘脑和纹状体。我们将分析扩展到包括这些皮质下区域,发现两者都表现出因肢体废用而增强的皮质FC和自发功能磁共振成像信号脉冲。背侧后壳核以及中央丘脑,主要是中央中核、腹外侧核和腹中间核,显示出与每个参与者打石膏前从人类连接组计划运动系统定位器获取的功能磁共振成像任务激活相对应的废用脉冲和FC变化。我们的研究结果为皮质-纹状体-丘脑-皮质环路在人类运动可塑性中的作用提供了新的理解,以及与睡眠调节生理学的潜在联系。此外,与帕金森病(PD)的FC观察结果的相似性对与肢体废用的病理生理联系提出了质疑。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f7ec/10833698/42960ebc2036/nihpp-2023.11.07.566031v2-f0001.jpg

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