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人类运动丘脑的神经元编码与制动相关的伸手运动学和位置误差。

Neurons in human motor thalamus encode reach kinematics and positional errors related to braking.

作者信息

Tien Rex, Platt Jonathan, Mendlen Madelyn, Kern Drew, Ojemann Steven, Thompson John, Kramer Daniel

机构信息

University of Colorado Anschutz Medical Campus.

University of Minnesota.

出版信息

Res Sq. 2025 Mar 26:rs.3.rs-6165736. doi: 10.21203/rs.3.rs-6165736/v1.

Abstract

Deep brain stimulation of the cerebellar-receiving region of motor thalamus, the ventral intermediate nucleus of the thalamus (VIM), effectively reduces the action tremor associated with essential tremor. However, the neural contribution of the VIM to the control of voluntary movement, and how that function relates to action tremor pathophysiology, is not well understood. In single thalamic neurons recorded during a naturalistic reaching task in essential tremor patients undergoing deep brain stimulation surgery, we find that firing rate changes align with the braking and stabilizing phases of reach movements, encode hand position and velocity above other kinematic variables, and strongly encode error signals relating the current hand position to the final reach target position. These findings support a hypothesis that the VIM contributes to the control of accurate stopping and stabilization of the hand, dysfunction of which aligns with models of action tremor generation.

摘要

对运动丘脑的小脑接收区域,即丘脑腹中间核(VIM)进行深部脑刺激,可有效减轻与特发性震颤相关的动作性震颤。然而,VIM对自主运动控制的神经作用,以及该功能与动作性震颤病理生理学的关系,目前尚不清楚。在接受深部脑刺激手术的特发性震颤患者进行自然伸手任务时记录的单个丘脑神经元中,我们发现放电率变化与伸手动作的制动和稳定阶段一致,编码手部位置和速度优于其他运动学变量,并强烈编码将当前手部位置与最终伸手目标位置相关的误差信号。这些发现支持了一个假设,即VIM有助于控制手部的精确停止和稳定,其功能障碍与动作性震颤产生的模型一致。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/24c4/11975039/ed80b513221d/nihpp-rs6165736v1-f0001.jpg

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