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尾侧额叶眼区中追踪神经元对全身旋转的前庭反应潜伏期。

Latency of vestibular responses of pursuit neurons in the caudal frontal eye fields to whole body rotation.

作者信息

Akao Teppei, Saito Hiroshi, Fukushima Junko, Kurkin Sergei, Fukushima Kikuro

机构信息

Department of Physiology, Hokkaido University School of Medicine, West 7, North 15, Sapporo 060-8638, Japan.

出版信息

Exp Brain Res. 2007 Mar;177(3):400-10. doi: 10.1007/s00221-006-0682-5.

Abstract

The smooth pursuit system and the vestibular system interact to keep the retinal target image on the fovea by matching the eye velocity in space to target velocity during head and/or whole body movement. The caudal part of the frontal eye fields (FEF) in the fundus of the arcuate sulcus contains pursuit-related neurons and the majority of them respond to vestibular stimulation induced by whole body movement. To understand the role of FEF pursuit neurons in the interaction of vestibular and pursuit signals, we examined the latency and time course of discharge modulation to horizontal whole body rotation during different vestibular task conditions in head-stabilized monkeys. Pursuit neurons with horizontal preferred directions were selected, and they were classified either as gaze-velocity neurons or eye/head-velocity neurons based on the previous criteria. Responses of these neurons to whole body step-rotation at 20 degrees/s were examined during cancellation of the vestibulo-ocular reflex (VOR), VOR x1, and during chair steps in complete darkness without a target (VORd). The majority of pursuit neurons tested (approximately 70%) responded during VORd with latencies <80 ms. These initial responses were basically similar in the three vestibular task conditions. The shortest latency was 20 ms and the modal value was 24 ms. These responses were also similar between gaze-velocity neurons and eye/head-velocity neurons, indicating that the initial responses (<80 ms) were vestibular responses induced by semicircular canal inputs. During VOR cancellation and x1, discharge of the two groups of neurons diverged at approximately 90 ms following the onset of chair rotation, consistent with the latencies associated with smooth pursuit. The shortest latency to the onset of target motion during smooth pursuit was 80 ms and the modal value was 95 ms. The time course of discharge rate difference of the two groups of neurons between VOR cancellation and x1 was predicted by the discharge modulation associated with smooth pursuit. These results provide further support for the involvement of the caudal FEF in integration of vestibular inputs and pursuit signals.

摘要

平稳跟踪系统和前庭系统相互作用,通过在头部和/或全身运动期间使空间中的眼球速度与目标速度相匹配,从而将视网膜目标图像保持在中央凹上。弓状沟底部的额叶眼区(FEF)尾部包含与跟踪相关的神经元,其中大多数对全身运动诱发的前庭刺激有反应。为了了解FEF跟踪神经元在前庭信号与跟踪信号相互作用中的作用,我们在头部稳定的猴子的不同前庭任务条件下,研究了对水平全身旋转的放电调制的潜伏期和时间进程。选择具有水平偏好方向的跟踪神经元,并根据先前的标准将它们分类为注视速度神经元或眼/头速度神经元。在取消前庭眼反射(VOR)、VOR×1以及在完全黑暗且无目标的椅子旋转过程中(VORd),检查了这些神经元对20度/秒的全身阶跃旋转的反应。大多数测试的跟踪神经元(约70%)在VORd期间以<80毫秒的潜伏期做出反应。这些初始反应在三种前庭任务条件下基本相似。最短潜伏期为20毫秒,众数为24毫秒。注视速度神经元和眼/头速度神经元之间的这些反应也相似,表明初始反应(<80毫秒)是由半规管输入诱发的前庭反应。在VOR取消和VOR×1期间,两组神经元的放电在椅子旋转开始后约90毫秒出现分歧,这与平稳跟踪的潜伏期一致。平稳跟踪期间目标运动开始的最短潜伏期为80毫秒,众数为95毫秒。两组神经元在VOR取消和VOR×1之间的放电率差异的时间进程由与平稳跟踪相关的放电调制预测。这些结果为FEF尾部参与前庭输入和跟踪信号的整合提供了进一步的支持。

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