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A METHOD OF MEASURING EYE MOVEMENT USING A SCLERAL SEARCH COIL IN A MAGNETIC FIELD.一种在磁场中使用巩膜搜索线圈测量眼动的方法。
IEEE Trans Biomed Eng. 1963 Oct;10:137-45. doi: 10.1109/tbmel.1963.4322822.
2
On the feedback control of orienting gaze shifts made with eye and head movements.关于通过眼球和头部运动进行定向注视转移的反馈控制
Prog Brain Res. 2003;142:55-68. doi: 10.1016/S0079-6123(03)42006-2.
3
Superior colliculus encodes distance to target, not saccade amplitude, in multi-step gaze shifts.在多步注视转移中,上丘编码的是到目标的距离,而非扫视幅度。
Nat Neurosci. 2003 Apr;6(4):404-13. doi: 10.1038/nn1027.
4
In multiple-step gaze shifts: omnipause (OPNs) and collicular fixation neurons encode gaze position error; OPNs gate saccades.在多步注视转移中:全暂停神经元(OPNs)和上丘注视神经元编码注视位置误差;全暂停神经元控制扫视。
J Neurophysiol. 2002 Oct;88(4):1726-42. doi: 10.1152/jn.2002.88.4.1726.
5
Evidence against a moving hill in the superior colliculus during saccadic eye movements in the monkey.反对猴子扫视眼动期间上丘中存在移动山丘的证据。
J Neurophysiol. 2002 Jun;87(6):2778-89. doi: 10.1152/jn.2002.87.6.2778.
6
The brainstem burst generator for saccadic eye movements: a modern synthesis.眼球扫视运动的脑干爆发发生器:一种现代综合理论
Exp Brain Res. 2002 Feb;142(4):439-62. doi: 10.1007/s00221-001-0912-9. Epub 2002 Jan 9.
7
Evidence that the superior colliculus participates in the feedback control of saccadic eye movements.上丘参与扫视眼动反馈控制的证据。
J Neurophysiol. 2002 Feb;87(2):679-95. doi: 10.1152/jn.00886.2000.
8
Functional imaging of the primate superior colliculus during saccades to visual targets.灵长类动物向视觉目标进行扫视时上丘的功能成像。
Nat Neurosci. 2001 Oct;4(10):1026-31. doi: 10.1038/nn727.
9
Fixation neurons in the superior colliculus encode distance between current and desired gaze positions.上丘中的注视神经元编码当前注视位置与期望注视位置之间的距离。
Nat Neurosci. 2000 Sep;3(9):932-9. doi: 10.1038/78847.
10
Multielectrode evidence for spreading activity across the superior colliculus movement map.多电极证据表明活动在中脑上丘运动图谱上的传播。
J Neurophysiol. 2000 Jul;84(1):344-57. doi: 10.1152/jn.2000.84.1.344.

猫上丘存在注视反馈的证据:放电反映注视轨迹扰动。

Evidence for gaze feedback to the cat superior colliculus: discharges reflect gaze trajectory perturbations.

作者信息

Matsuo Satoshi, Bergeron André, Guitton Daniel

机构信息

Montreal Neurological Institute, McGill University, Montreal, Quebec, Canada, H3A2B4.

出版信息

J Neurosci. 2004 Mar 17;24(11):2760-73. doi: 10.1523/JNEUROSCI.5120-03.2004.

DOI:10.1523/JNEUROSCI.5120-03.2004
PMID:15028769
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6729513/
Abstract

Rapid coordinated eye-head movements, called saccadic gaze shifts, displace the line of sight from one location to another. A critical structure in the gaze control circuitry is the superior colliculus (SC) of the midbrain, which drives gaze saccades by relaying cortical commands to brainstem eye and head motor circuits. We proposed that the SC lies within a gaze feedback loop and generates an error signal specifying gaze position error (GPE), the distance between target and current gaze positions. We investigated this feedback hypothesis in cats by briefly stopping head motion during large ( approximately 50 degrees ) gaze saccades made in the dark. This maneuver interrupted intended gaze saccades and briefly immobilized gaze (a plateau). After brake release, a corrective gaze saccade brought the gaze on goal. In the caudal SC, the firing frequency of a cell gradually increased to a maximum that just preceded the optimal gaze saccade encoded by the position of the cell and then declined back to zero near gaze saccade end. In brake trials, the activity level just preceding a brake-induced plateau continued steadily during the plateau and waned to zero only near the end of the corrective saccade. The duration of neural activity was stretched to reflect the increased time to target acquisition, and firing frequency during a plateau was proportional to the GPE of the plateau. In comparison, in the rostral SC, the duration of saccade-related pauses in fixation cell activity increased as plateau duration increased. The data show that the cat's SC lies in a gaze feedback loop and that it encodes GPE.

摘要

快速协调的眼-头运动,即扫视性注视转移,可将视线从一个位置转移到另一个位置。注视控制回路中的一个关键结构是中脑的上丘(SC),它通过将皮层指令传递到脑干眼动和头部运动回路来驱动注视扫视。我们提出,上丘位于注视反馈回路中,并产生一个指定注视位置误差(GPE)的误差信号,即目标位置与当前注视位置之间的距离。我们通过在黑暗中进行大角度(约50度)注视扫视时短暂停止头部运动,对猫的这一反馈假说进行了研究。这一操作中断了预期的注视扫视,并短暂固定了注视(一个平台期)。在制动解除后,一个矫正性注视扫视将注视带到目标位置。在尾侧上丘,一个细胞的放电频率逐渐增加到最大值,该最大值恰好在由该细胞位置编码的最佳注视扫视之前出现,然后在注视扫视结束时降至零。在制动试验中,在制动引起的平台期之前的活动水平在平台期持续稳定,仅在矫正性扫视接近结束时降至零。神经活动的持续时间被拉长以反映获取目标所需增加的时间,并且平台期的放电频率与平台期的GPE成正比。相比之下,在头侧上丘,注视细胞活动中与扫视相关的暂停持续时间随着平台期持续时间的增加而增加。数据表明,猫的上丘位于注视反馈回路中,并且它对GPE进行编码。