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双眼会聚运动的神经控制:编码会聚速度的神经元。

Neural control of vergence eye movements: neurons encoding vergence velocity.

作者信息

Mays L E, Porter J D, Gamlin P D, Tello C A

出版信息

J Neurophysiol. 1986 Oct;56(4):1007-21. doi: 10.1152/jn.1986.56.4.1007.

Abstract

Single-unit recordings were made from midbrain areas in monkeys trained to make both conjugate and disjunctive (vergence) eye movements. Previous work had identified cells with a firing rate proportional to the vergence angle, without regard to the direction of conjugate gaze. The present study describes the activity of neurons that burst for disjunctive eye movements. Convergence burst cells display a discrete burst of activity just before and during convergence eye movements. For most of these cells, the profile of the burst is correlated with instantaneous vergence velocity and the number of spikes in the burst is correlated with the size of the vergence movement. Some of these cells also have a tonic firing rate that is positively correlated with vergence angle (convergence burst-tonic cells). Divergence burst cells have similar properties, except that they fire for divergent and not convergent movements. Divergence burst cells are encountered far less often than convergence burst cells. Both convergence and divergence burst cells were found in an area of the mesencephalic reticular formation just dorsal and lateral to the oculomotor nucleus. Convergence burst cells were also recorded in another more dorsal mesencephalic region, rostral to the superior colliculus. Both of the areas also contain cells that encode vergence angle. Models of the vergence system derived from psychophysical data imply the existence of a vergence integrator, the output of which is vergence angle. Some models also suggest the presence of a parallel element that improves the frequency response of the vergence system, but has no effect on the steady-state behavior of the system. Vergence burst cells would be suitable inputs to a vergence integrator. By providing a vergence velocity signal to motoneurons, they may improve the dynamic response of the vergence system. The behavior of vergence burst cells during vergence movements is similar to that of the medium-lead burst cells during saccades. The proposed roles for vergence velocity cells are analogous to those of the saccadic burst cells. In this respect, the neural organization of the vergence system resembles that of the saccadic system, despite the distinct difference in the kinematics of these two types of eye movements.

摘要

在训练有素的猴子身上,从中脑区域进行单神经元记录,这些猴子能够做出共轭和非共轭(聚散)眼球运动。先前的研究已经确定了一些细胞,其放电频率与聚散角度成正比,而不考虑共轭注视的方向。本研究描述了在非共轭眼球运动时爆发放电的神经元的活动。会聚爆发细胞在会聚眼球运动之前和期间会显示出离散的活动爆发。对于大多数这些细胞来说,爆发的特征与瞬时聚散速度相关,爆发中的尖峰数量与聚散运动的幅度相关。其中一些细胞还具有与聚散角度呈正相关的紧张性放电频率(会聚爆发 - 紧张性细胞)。发散爆发细胞具有类似的特性,只是它们在发散运动而非会聚运动时放电。发散爆发细胞的出现频率远低于会聚爆发细胞。在动眼神经核背侧和外侧的中脑网状结构区域发现了会聚和发散爆发细胞。在中脑另一个更靠背侧、位于上丘前方的区域也记录到了会聚爆发细胞。这两个区域还都包含编码聚散角度的细胞。从心理物理学数据推导出来的聚散系统模型意味着存在一个聚散积分器,其输出为聚散角度。一些模型还表明存在一个并行元件,它可以改善聚散系统的频率响应,但对系统的稳态行为没有影响。会聚爆发细胞将是聚散积分器的合适输入。通过向运动神经元提供聚散速度信号,它们可能会改善聚散系统的动态响应。聚散爆发细胞在聚散运动期间的行为类似于扫视期间的中导爆发细胞。聚散速度细胞的假定作用类似于扫视爆发细胞的作用。在这方面,聚散系统的神经组织类似于扫视系统,尽管这两种眼球运动的运动学有明显差异。

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