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长期视觉光学反转诱导的极端前庭眼适应

Extreme vestibulo-ocular adaptation induced by prolonged optical reversal of vision.

作者信息

Gonshor A, Jones G M

机构信息

DRB Aviation Medical Research Unit, Department of Physiology, McGill University, Montréal, Québec, Canada.

出版信息

J Physiol. 1976 Apr;256(2):381-414. doi: 10.1113/jphysiol.1976.sp011330.

DOI:10.1113/jphysiol.1976.sp011330
PMID:16992508
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1309313/
Abstract
  1. These experiments investigated plastic changes in the vestibulo-ocular reflex (VOR) of human subjects consequent to long-term optical reversal of vision during free head movement. Horizontal vision-reversal was produced by head-mounted dove prisms. Four normal adults were continuously exposed to these conditions during 2, 6, 7 and 27 days respectively.2. A sinusoidal rotational stimulus, previously shown to be nonhabituating (1/6 Hz; 60 degrees /sec amplitude), was used to test the VOR in the dark at frequent intervals both during the period of vision-reversal and an equal period after return to normal vision. D.c. electro-oculography (EOG) was used to record eye movement, taking care to avoid changes of EOG gain due to light/dark adaptation of the retina.3. All subjects showed substantial reduction of VOR gain (eye velocity/head velocity) during the first 2 days of vision-reversal. The 6-, 7- and 27-day subjects showed further reduction of gain which reached a low plateau at about 25% the normal value by the end of one week. At this time the attenuation of some EOG records was so marked as to defy extraction of a meaningful sinusoidal signal.4. After removal of the prisms VOR gain recovered along a time course which approximated that of the original adaptive attenuation.5. In the 27-day experiment large changes of phase developed in the VOR during the second week of vision-reversal. These changes generally progressed in a lagging sense, to reach 130 degrees phase lag relative to normal by the beginning of the third week. Accompanying this was a considerable restoration of gain from 25 to 50% the normal value. These adapted conditions, which approximate functional reversal of the reflex, were then maintained steady, even overnight, until return to normal vision on the 28th day.6. Thereafter, whereas VOR phase returned to near-normal in 2 hr, restoration of gain occupied a further 2-3 weeks.7. There was a highly systematic relation between instantaneous gain and phase, even during periods of widely fluctuating change associated with transition from one steady state to another. During such transition there was a tendency for directional preponderance to occur in the VOR.8. All the observed changes were highly specific to the plane of vision-reversal, no VOR changes being observed in the sagittal plane.9. VOR changes were adaptive, in the sense that they were always goal-directed towards the requirements of retinal image stabilization during head movement. They were plastic to the extent that there was extensive and retained remodelling of the reflex towards this goal.10. It is inferred that all the observed changes in gain and phase are compatible with a simple neural network employing known vestibulo-ocular projections via brainstem and cerebellar pathways, providing that the reversed visual tracking task can produce plastic modulation of efficacy in the cerebellar pathway and that this pathway exhibits a dynamic characteristic producing moderate phase lead in a sinusoidal signal at 1/6 Hz.
摘要
  1. 这些实验研究了人类受试者在自由头部运动期间长期视觉光学反转后前庭眼反射(VOR)的可塑性变化。水平视觉反转由头戴式鸽形棱镜产生。四名正常成年人分别在2天、6天、7天和27天持续暴露于这些条件下。

  2. 一种先前已证明不会产生习惯化的正弦旋转刺激(1/6 Hz;60度/秒振幅),用于在视觉反转期间以及恢复正常视觉后的相同时间段内,频繁在黑暗中测试VOR。采用直流眼电图(EOG)记录眼球运动,注意避免由于视网膜的明/暗适应导致EOG增益的变化。

  3. 所有受试者在视觉反转的前2天VOR增益(眼球速度/头部速度)显著降低。6天、7天和27天的受试者增益进一步降低,到一周结束时达到约正常数值25%的低平台期。此时,一些EOG记录的衰减非常明显,以至于无法提取有意义的正弦信号。

  4. 移除棱镜后,VOR增益沿着近似于原始适应性衰减的时间进程恢复。

  5. 在27天的实验中,视觉反转第二周VOR出现了大的相位变化。这些变化通常呈滞后趋势发展,到第三周开始时相对于正常情况达到130度的相位滞后。与此同时,增益从正常数值的25%相当程度地恢复到50%。这些适应状态近似于反射的功能反转,然后保持稳定,甚至过夜,直到第28天恢复正常视觉。

  6. 此后,虽然VOR相位在2小时内恢复到接近正常,但增益的恢复又占用了另外2 - 3周时间。

  7. 即使在从一种稳定状态转变到另一种稳定状态的广泛波动变化期间,瞬时增益和相位之间也存在高度系统的关系。在这种转变期间,VOR存在方向优势的倾向。

  8. 所有观察到的变化都高度特定于视觉反转平面,在矢状面未观察到VOR变化。

  9. VOR变化是适应性的,因为它们总是朝着头部运动期间视网膜图像稳定的要求目标导向。它们具有可塑性,因为朝着这个目标对反射进行了广泛且持续的重塑。

  10. 据推断,所有观察到的增益和相位变化都与一个简单的神经网络兼容,该网络通过脑干和小脑通路采用已知的前庭眼投射,前提是反向视觉跟踪任务能够在小脑通路中产生效能可塑性调制,并且该通路表现出在1/6 Hz正弦信号中产生适度相位超前的动态特性。

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