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本文引用的文献

1
Plasticity of the vertical VOR: a system identification approach to localizing the adaptive sites.垂直前庭眼反射的可塑性:一种用于定位适应位点的系统识别方法。
Ann N Y Acad Sci. 2002 Dec;978:480-95. doi: 10.1111/j.1749-6632.2002.tb07589.x.
2
Vestibuloocular reflex dynamics during high-frequency and high-acceleration rotations of the head on body in rhesus monkey.恒河猴头部在身体上进行高频和高加速度旋转时的前庭眼反射动力学
J Neurophysiol. 2002 Jul;88(1):13-28. doi: 10.1152/jn.2002.88.1.13.
3
Regulation of firing response gain by calcium-dependent mechanisms in vestibular nucleus neurons.前庭核神经元中钙依赖机制对放电反应增益的调节。
J Neurophysiol. 2002 Apr;87(4):2031-42. doi: 10.1152/jn.00821.2001.
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Relationship between time- and frequency-domain analyses of angular head movements in the squirrel monkey.松鼠猴头部角运动的时域与频域分析之间的关系
J Comput Neurosci. 2001 Nov-Dec;11(3):217-39. doi: 10.1023/a:1013771014232.
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Horizontal vestibuloocular reflex evoked by high-acceleration rotations in the squirrel monkey. IV. Responses after spectacle-induced adaptation.松鼠猴高加速度旋转诱发的水平前庭眼反射。IV. 眼镜诱发适应后的反应。
J Neurophysiol. 2001 Oct;86(4):1594-611. doi: 10.1152/jn.2001.86.4.1594.
6
Experimental and computational analysis of monkey smooth pursuit eye movements.猴子平稳跟踪眼球运动的实验与计算分析
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7
High-frequency dynamics of regularly discharging canal afferents provide a linear signal for angular vestibuloocular reflexes.规则放电的半规管传入神经的高频动态为角前庭眼反射提供线性信号。
J Neurophysiol. 1999 Oct;82(4):2000-5. doi: 10.1152/jn.1999.82.4.2000.
8
Horizontal vestibuloocular reflex evoked by high-acceleration rotations in the squirrel monkey. I. Normal responses.松鼠猴高加速度旋转诱发的水平前庭眼反射。I. 正常反应。
J Neurophysiol. 1999 Sep;82(3):1254-70. doi: 10.1152/jn.1999.82.3.1254.
9
Neural learning rules for the vestibulo-ocular reflex.前庭眼反射的神经学习规则。
J Neurosci. 1998 Nov 1;18(21):9112-29. doi: 10.1523/JNEUROSCI.18-21-09112.1998.
10
Gain and delay of human vestibulo-ocular reflexes to oscillation and steps of the head by a reactive torque helmet. I. Normal subjects.通过反应性扭矩头盔对人类前庭眼反射对头摆动和阶跃的增益及延迟。I. 正常受试者。
Acta Otolaryngol. 1997 Nov;117(6):785-95. doi: 10.3109/00016489709114203.

高频下前庭眼反射(VOR)学习的正常表现与表达。

Normal performance and expression of learning in the vestibulo-ocular reflex (VOR) at high frequencies.

作者信息

Ramachandran Ramnarayan, Lisberger Stephen G

机构信息

Deptartment of Physiology, Howard Hughes Medical Institute and W. M. Keck Center for Integrative Neuroscience, University of California at San Francisco, 513 Parnassus Ave., Box 0444, San Francisco, CA 94143-0444, USA.

出版信息

J Neurophysiol. 2005 Apr;93(4):2028-38. doi: 10.1152/jn.00832.2004. Epub 2004 Nov 17.

DOI:10.1152/jn.00832.2004
PMID:15548626
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2603174/
Abstract

The rotatory vestibulo-ocular reflex (VOR) keeps the visual world stable during head movements by causing eye velocity that is equal in amplitude and opposite in direction to angular head velocity. We have studied the performance of the VOR in darkness for sinusoidal angular head oscillation at frequencies ranging from 0.5 to 50 Hz. At frequencies of > or = 25 Hz, the harmonic distortion of the stimulus and response were estimated to be <14 and 22%, respectively. We measured the gain of the VOR (eye velocity divided by head velocity) and the phase shift between eye and head velocity before and after adaptation with altered vision. Before adaptation, VOR gains were close to unity for frequencies < or = 20 Hz and increased as a function of frequency reaching values of 3 or 4 at 50 Hz. Eye velocity was almost perfectly out of phase with head velocity for frequencies < or = 12.5 Hz, and lagged perfect compensation increasingly as a function of frequency. After adaptive modification of the VOR with magnifying or miniaturizing optics, gain showed maximal changes at frequencies <12.5 Hz, smaller changes at higher frequencies, and no change at frequencies larger than 25 Hz. Between 15 and 25 Hz, the phase of eye velocity led the unmodified VOR by as much as 50 degrees when the gain of the VOR had been decreased, and lagged when the gain of the VOR had been increased. We were able to reproduce the main features of our data with a two-pathway model of the VOR, where the two pathways had different relationships between phase shift and frequency.

摘要

旋转性前庭眼反射(VOR)通过产生与头部角向速度大小相等、方向相反的眼速度,在头部运动期间保持视觉世界的稳定。我们研究了在黑暗中,VOR对频率范围为0.5至50Hz的正弦角向头部振荡的表现。在频率≥25Hz时,刺激和反应的谐波失真估计分别<14%和22%。我们测量了VOR的增益(眼速度除以头部速度)以及在视力改变适应前后眼速度和头部速度之间的相位偏移。在适应之前,对于频率≤20Hz,VOR增益接近1,并随着频率增加,在50Hz时达到3或4的值。对于频率≤12.5Hz,眼速度几乎与头部速度完全异相,并随着频率增加,滞后于完美补偿的程度越来越大。在用放大或缩小光学器件对VOR进行适应性修改后,增益在频率<12.5Hz时变化最大,在较高频率时变化较小,在大于25Hz的频率时无变化。在15至25Hz之间,当VOR增益降低时,眼速度的相位比未修改的VOR超前多达50度,而当VOR增益增加时则滞后。我们能够用VOR的双通路模型重现我们数据的主要特征,其中两条通路在相位偏移和频率之间具有不同的关系。