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对手部空间和肌肉空间中M1的任务依赖性放电进行直接比较。

Direct comparison of the task-dependent discharge of M1 in hand space and muscle space.

作者信息

Morrow M M, Jordan L R, Miller L E

机构信息

Department of Physiology, Northwestern University Medical School and Northwestern University Institute for Neuroscience, 303 East Chicago Avenue, Chicago, IL 60611, USA.

出版信息

J Neurophysiol. 2007 Feb;97(2):1786-98. doi: 10.1152/jn.00150.2006. Epub 2006 Nov 22.

Abstract

Since its introduction in the early 1980s, the concept of a "preferred direction" for neuronal discharge has proven to be a powerful means of studying motor areas of the brain. In the current paper, we introduce the concept of a "muscle-space"-preferred direction (PD(M)) that is analogous to the familiar hand-space-preferred direction (PD(H)). PD(M) reflects the similarity between the discharge of a given neuron and the activity of each muscle in much the way that PD(H) reflects the similarity of discharge with motion along each of the three Cartesian coordinate axes. We used PD(M) to analyze the data recorded from neurons in the primary motor cortex (M1) of three different monkeys. The monkeys performed center-out movements within two different cubical workspaces centered either to the left or right of the monkey's shoulder while we simultaneously recorded neuronal discharge, muscle activity, and limb orientation. We calculated preferred directions in both hand space and muscle space, and computed the angles between these vectors under a variety of conditions. PDs for different neurons were broadly distributed throughout both hand space and muscle space, but the muscle-space vectors appeared to form clusters of functionally similar neurons. In general, repeated estimates of PD(M) were more stable over time than were similar estimates of PD(H). Likewise, there was less change in PD(M) than in PD(H) for data recorded from the two different workspaces. However, although a majority of neurons had this muscle-like property, a significant minority was more stable in Cartesian hand space, reflecting a heterogeneity of function within M1.

摘要

自20世纪80年代初被引入以来,神经元放电“偏好方向”的概念已被证明是研究大脑运动区域的有力手段。在当前论文中,我们引入了“肌肉空间”偏好方向(PD(M))的概念,它类似于大家熟悉的“手部空间”偏好方向(PD(H))。PD(M)反映了给定神经元的放电与每块肌肉活动之间的相似性,其方式与PD(H)反映放电与沿笛卡尔坐标系三个坐标轴中每一个轴的运动的相似性大致相同。我们使用PD(M)来分析从三只不同猴子的初级运动皮层(M1)中的神经元记录的数据。猴子在以猴子肩部左侧或右侧为中心的两个不同立方体工作空间内进行从中心向外的运动,同时我们记录神经元放电、肌肉活动和肢体方位。我们计算了手部空间和肌肉空间中的偏好方向,并在各种条件下计算了这些向量之间的夹角。不同神经元的偏好方向在手部空间和肌肉空间中广泛分布,但肌肉空间向量似乎形成了功能相似的神经元簇。一般来说,随着时间的推移,PD(M)的重复估计比PD(H)的类似估计更稳定。同样,对于从两个不同工作空间记录的数据,PD(M)的变化比PD(H)的变化小。然而,尽管大多数神经元具有这种类似肌肉的特性,但仍有相当少数的神经元在笛卡尔手部空间中更稳定,这反映了M1内功能的异质性。

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