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本体感觉缺失患者的伸手动作障碍。I. 空间误差。

Impairments of reaching movements in patients without proprioception. I. Spatial errors.

作者信息

Gordon J, Ghilardi M F, Ghez C

机构信息

Center for Neurobiology and Behavior, New York State Psychiatric Institute, New York.

出版信息

J Neurophysiol. 1995 Jan;73(1):347-60. doi: 10.1152/jn.1995.73.1.347.

DOI:10.1152/jn.1995.73.1.347
PMID:7714577
Abstract
  1. This paper introduces a series of studies in which we analyze the impairments in a planar reaching task in human patients with severe proprioceptive deficits resulting from large-fiber sensory neuropathy. We studied three patients, all of whom showed absence of discriminative tactile sensation, position sense, and stretch reflexes in the upper extremities. Muscle strength was normal. We compared the reaching movements of the patients with those of normal control subjects. The purpose of this first paper was no characterize the spatial errors in these patients that result primarily from impairments in the planning and execution of movement rather than in feedback control. This was done by using a task in which visual feedback of errors during movement was prevented. 2. Subjects were instructed to move their hand from given starting positions of different targets on a horizontal digitizing tablet. Hand position and targets were displayed on a computer screen. Subjects could not see their hand, and the screen display of hand position was blanked at the signal to move. Thus visual feedback during movement could not be used to achieve accuracy. Movement paths were displayed as knowledge of results after each trial. 3. Compared with controls, the patients made large spatial errors in both movement direction and extent. Directional errors were evident from movement onset, suggesting that they resulted from improper planning. In addition, patients' hand paths showed large curves and secondary movements after initial stops. 4. The overall control strategy used by patients appeared the same as that used by controls. Hand trajectories were approximately bell shaped, and movement extent was controlled by scaling a trajectory waveform in amplitude and time. However, both control subjects and patients showed systematic errors in movement extent that depended on the direction of hand movement. In control subjects, these systematic dependencies of extent on direction were small, but in patients they produced large and prominent errors. Analysis of the hand trajectories revealed that errors were associated with differences in velocity and acceleration for movements in different directions. In an earlier study, we showed that in subjects with normal sensation that the dependence of acceleration and velocity on direction results from a failure to take the inertial properties of the limb into account in programming the initial trajectory. In control subjects, these differences in initial acceleration are partially compensated by direction-dependent variations in movement time.(ABSTRACT TRUNCATED AT 400 WORDS)
摘要
  1. 本文介绍了一系列研究,在这些研究中,我们分析了因大纤维感觉神经病变导致严重本体感觉缺陷的人类患者在平面够物任务中的损伤情况。我们研究了三名患者,他们上肢均表现出缺乏辨别性触觉、位置觉和牵张反射。肌肉力量正常。我们将患者的够物动作与正常对照受试者的动作进行了比较。第一篇论文的目的是描述这些患者主要由运动计划和执行受损而非反馈控制受损导致的空间误差。这是通过使用一项任务来完成的,在该任务中,运动过程中的误差视觉反馈被阻止。2. 受试者被指示在水平数字化平板电脑上从给定的不同目标起始位置移动他们的手。手的位置和目标显示在电脑屏幕上。受试者看不到他们的手,并且在移动信号发出时手位置的屏幕显示被清空。因此,运动过程中的视觉反馈不能用于实现准确性。每次试验后,运动路径作为结果知识被显示出来。3. 与对照组相比,患者在运动方向和范围上都出现了较大的空间误差。从运动开始就明显存在方向误差,这表明它们是由不当的计划导致的。此外,患者的手部路径在初始停止后显示出大的曲线和二次运动。4. 患者使用的总体控制策略似乎与对照组相同。手部轨迹大致呈钟形,运动范围通过在幅度和时间上缩放轨迹波形来控制。然而,对照受试者和患者在运动范围上都表现出取决于手部运动方向的系统误差。在对照受试者中,范围对方向的这些系统依赖性较小,但在患者中它们产生了大而显著的误差。对手部轨迹的分析表明,误差与不同方向运动的速度和加速度差异有关。在早期的一项研究中,我们表明在感觉正常的受试者中,加速度和速度对方向的依赖性是由于在规划初始轨迹时没有考虑肢体的惯性特性。在对照受试者中,这些初始加速度的差异部分地由运动时间的方向依赖性变化所补偿。(摘要截于400字)

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