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Vestibulo-ocular and optokinetic reactions to rotation and their interaction in the rabbit

机译:兔眼球旋转和视动反应及其相互作用

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摘要

1. Compensatory eye movements due to sinusoidal yaw movements on a torsion swing were measured in alert rabbits. A range of combinations of frequencies (0·048-1·8 Hz) and amplitudes (1-25°) were used. Gain (cumulative slow phase eye movement amplitude/swing amplitude) and phase (eye position vs. swing position — 180°) were calculated from averaged records.2. Eyes were either closed (canal-ocular reactions only), open in earth-fixed visual surroundings (natural interaction of vestibular and optokinetic reactions), or looking at platform-fixed surroundings, which rotated with the animal (conflict situation). In some rabbits, the same stimulus programme was applied a month after bilateral destruction of the labyrinths (optokinetic reactions only).3. For canal-ocular reactions, no true threshold was found. Yet the system showed a small but systematic non-linearity which is tentatively explained by an acceleration-dependence of gain. For the higher frequencies (0·40-1·8 Hz) used, gain was 0·55-0·75, with a decrease at the lower frequencies, down to 0·16-0·33 at 0·048 Hz. The response showed a phase-lead of about 45° at 0·048 Hz and was nearly in phase at 1-1·8 Hz. The long time constant of the cupula-endolymph system was estimated at about 3·3 sec.4. With earth-fixed visual surroundings a frequency-independent gain (range 0·55-0·82) with negligible phase error was found for the entire stimulus range tested. This natural combination of canal-ocular and optokinetic systems appears to function very efficiently, with mutual correction of the defects of the systems apart.5. With platform-fixed visual surroundings the canal-ocular system was severely inhibited and its non-linearities were markedly enhanced by the optokinetic system, especially when the torsion swing moved slowly.6. The general shape of input—output relations of optokinetic reactions after labyrinthectomy were similar to those found earlier in normal animals, but gain was subnormal for the entire stimulus range tested.
机译:1.在警觉的兔子中测量由于扭摆产生的正弦偏航运动引起的代偿性眼动。使用了频率(0·048-1·8 Hz)和振幅(1-25°)的组合范围。从平均记录中计算出增益(累积的慢速相位眼动幅度/摆动幅度)和相位(眼位置对摆动位置— 180°)。2。闭上眼睛(仅对眼眼反应),在固定于地球的视觉环境中睁开眼睛(前庭和视动反应的自然相互作用),或者看着随动物旋转的平台固定环境(冲突情况)。在某些兔子中,在迷宫的双边破坏后一个月,实施了相同的刺激程序(仅光动力学反应)。3。对于耳道反应,未发现真正的阈值。然而,系统显示出很小但系统的非线性,这可以通过增益的加速度依赖性来临时解释。对于所使用的较高频率(0·40-1·8 Hz),增益为0·55-0·75,在较低频率处减小,在0·048 Hz时降至0·16-0·33。响应显示在0·048 Hz处的相位超前约45°,在1-1·8 Hz时几乎同相。吸盘-内淋巴系统的长时间常数估计约为3·3 sec.4。在固定的视觉环境中,发现在整个测试刺激范围内,频率无关的增益(范围0·55-0·82)具有可忽略不计的相位误差。眼-眼和视动系统的这种自然结合看起来非常有效,并且相互纠正了系统的缺陷。5。在平台固定的视觉环境下,视动系统会严重抑制眼-眼系统,并且其非线性会显着增强,尤其是在扭摆缓慢移动时。6。迷路切除后视动反应的输入输出关系的总体形状与早期在正常动物中发现的相似,但在整个测试刺激范围内增益均低于正常水平。

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