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通过对猴子弓形额叶追随区进行微刺激增强追随眼动的多个组成部分。

Enhancement of multiple components of pursuit eye movement by microstimulation in the arcuate frontal pursuit area in monkeys.

作者信息

Tanaka Masaki, Lisberger Stephen G

机构信息

Howard Hughes Medical Institute, Department of Physiology, University of California-San Francisco, San Francisco, CA 94143, USA.

出版信息

J Neurophysiol. 2002 Feb;87(2):802-18. doi: 10.1152/jn.00409.2001.

Abstract

Periarcuate frontal cortex is involved in the control of smooth pursuit eye movements, but its role remains unclear. To better understand the control of pursuit by the "frontal pursuit area" (FPA), we applied electrical microstimulation when the monkeys were performing a variety of oculomotor tasks. In agreement with previous studies, electrical stimulation consisting of a train of 50-microA pulses at 333 Hz during fixation of a stationary target elicited smooth eye movements with a short latency (approximately 26 ms). The size of the elicited smooth eye movements was enhanced when the stimulation pulses were delivered during the maintenance of pursuit. The enhancement increased as a function of ongoing pursuit speed and was greater during pursuit in the same versus opposite direction of the eye movements evoked at a site. If stimulation was delivered during pursuit in eight different directions, the elicited eye velocity was fit best by a model incorporating two stimulation effects: a directional signal that drives eye velocity and an increase in the gain of ongoing pursuit eye speed in all directions. Separate experiments tested the effect of stimulation on the response to specific image motions. Stimulation consisted of a train of pulses at 100 or 200 Hz delivered during fixation so that only small smooth eye movements were elicited. If the stationary target was perturbed briefly during microstimulation, normally weak eye movement responses showed strong enhancement. If delivered at the initiation of pursuit, the same microstimulation caused enhancement of the presaccadic initiation of pursuit for steps of target velocity that moved the target either away from the position of fixation or in the direction of the eye movement caused by stimulation at the site. Stimulation in the FPA increased the latency of saccades to stationary or moving targets. Our results show that the FPA has two kinds of effects on the pursuit system. One drives smooth eye velocity in a fixed direction and is subject to on-line gain control by ongoing pursuit. The other causes enhancement of both the speed of ongoing pursuit and the responses to visual motion in a way that is not strongly selective for the direction of pursuit. Enhancement may operate either at a single site or at multiple sites. We conclude that the FPA plays an important role in on-line gain control for pursuit as well as possibly delivering commands for the direction and speed of smooth eye motion.

摘要

弓状额叶周围皮质参与平滑跟踪眼球运动的控制,但其作用仍不清楚。为了更好地理解“额叶跟踪区”(FPA)对跟踪的控制,我们在猴子执行各种眼球运动任务时施加了电微刺激。与先前的研究一致,在固定静止目标期间以333 Hz施加一串50微安脉冲组成的电刺激会引发潜伏期较短(约26毫秒)的平滑眼球运动。当在跟踪维持期间递送刺激脉冲时,引发的平滑眼球运动的大小会增加。这种增强随着持续跟踪速度的增加而增加,并且在与某一部位诱发的眼球运动相同或相反方向的跟踪过程中更大。如果在八个不同方向的跟踪过程中进行刺激,通过包含两种刺激效应的模型可以最好地拟合诱发的眼球速度:一种驱动眼球速度的方向信号和在所有方向上持续跟踪眼球速度增益的增加。单独的实验测试了刺激对特定图像运动反应的影响。刺激由在固定期间以100或200 Hz施加的一串脉冲组成,以便仅引发小的平滑眼球运动。如果在微刺激期间静止目标被短暂扰动,通常较弱的眼球运动反应会显示出强烈的增强。如果在跟踪开始时施加,相同的微刺激会导致对于使目标远离固定位置或以该部位刺激引起的眼球运动方向移动的目标速度步长,跟踪的扫视前启动增强。FPA中的刺激增加了对静止或移动目标的扫视潜伏期。我们的结果表明,FPA对跟踪系统有两种影响。一种在固定方向上驱动平滑眼球速度,并受到持续跟踪的在线增益控制。另一种以对跟踪方向没有强烈选择性的方式增强持续跟踪的速度和对视觉运动的反应。增强可能在单个部位或多个部位起作用。我们得出结论,FPA在跟踪的在线增益控制中起着重要作用,并且可能还为平滑眼球运动的方向和速度传递指令。

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