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复杂人体运动的功能磁共振成像

Functional magnetic resonance imaging of complex human movements.

作者信息

Rao S M, Binder J R, Bandettini P A, Hammeke T A, Yetkin F Z, Jesmanowicz A, Lisk L M, Morris G L, Mueller W M, Estkowski L D

机构信息

Department of Neurology, Medical College of Wisconsin, Milwaukee 53226.

出版信息

Neurology. 1993 Nov;43(11):2311-8. doi: 10.1212/wnl.43.11.2311.

Abstract

Functional magnetic resonance imaging (FMRI) is a new, noninvasive imaging tool thought to measure changes related to regional cerebral blood flow (rCBF). Previous FMRI studies have demonstrated functional changes within the primary cerebral cortex in response to simple activation tasks, but it is unknown whether FMRI can also detect changes within the nonprimary cortex in response to complex mental activities. We therefore scanned six right-handed healthy subjects while they performed self-paced simple and complex finger movements with the right and left hands. Some subjects also performed the tasks at a fixed rate (2 Hz) or imagined performing the complex task. Functional changes occurred (1) in the contralateral primary motor cortex during simple, self-paced movements; (2) in the contralateral (and occasionally ipsilateral) primary motor cortex, the supplementary motor area (SMA), the premotor cortex of both hemispheres, and the contralateral somatosensory cortex during complex, self-paced movements; (3) with less intensity during paced movements, presumably due to the slower movement rates associated with the paced (relative to self-paced) condition; and (4) in the SMA and, to a lesser degree, the premotor cortex during imagined complex movements. These preliminary results are consistent with hierarchical models of voluntary motor control.

摘要

功能磁共振成像(FMRI)是一种新型的非侵入性成像工具,被认为可测量与局部脑血流量(rCBF)相关的变化。以往的FMRI研究已证明,在简单激活任务的刺激下,初级大脑皮层内会发生功能变化,但尚不清楚FMRI能否检测到在复杂心理活动刺激下非初级皮层内的变化。因此,我们对6名右利手健康受试者进行了扫描,期间他们用右手和左手进行了自主节奏的简单和复杂手指运动。部分受试者还以固定频率(2赫兹)执行任务或想象执行复杂任务。功能变化出现在:(1)简单自主节奏运动期间对侧初级运动皮层;(2)复杂自主节奏运动期间对侧(偶尔同侧)初级运动皮层、辅助运动区(SMA)、双侧半球的运动前区皮层以及对侧躯体感觉皮层;(3)节奏运动期间强度较低,可能是由于与节奏运动(相对于自主节奏运动)状态相关的较慢运动速率;(4)想象复杂运动期间在SMA以及程度较轻的运动前区皮层。这些初步结果与自主运动控制的层级模型一致。

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