[BEHAVIORAL AND FUNCTIONAL VESTIBULAR DISTURBANCES AFTER SPACE FLIGHT. 2. FISHES, AMPHIBIANS AND BIRDS].

D V Lychakov
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Abstract

The review contains data on functional shifts in fishes, amphibians and birds caused by changes in the otolith system operation after stay under weightlessness conditions. These data are of theoretical and practical significance and are important to resolve some fundamental problems of vestibulogy. The analysis of the results of space experiments has shown that weightlessness conditions do not exert a substantial impact on formation and functional state of the otolith system in embryonic fishes, amphibians and birds developed during space flight. Weightlessness conditions do pot inhibit embryonic development of lower vertebrates but even have rather beneficial effect on it. This is consistent with conclusions concerning development of mammalian fetuses. The experimental results show that weightlessness can cause similar functional and behavioral vestibular shifts both in lower vertebrates and in mammals. For example, immediately after an orbital flight the vestibuloocular reflex in fish larvae and tadpoles (without lordosis) was stronger than in control individuals. A similar shift of the otolith reflex was observed in the majority of cosmonauts after short-term orbital flights. Immediately after landing adult terrestrial vertebrates, as well as human beings, exhibit lower activity levels, worse equilibrium and coordination of movements. Another interesting finding observed after landing of the cosmic apparatus was an unusual looping character of tadpole swimming. It is supposed that the unusual motor activity of animals as well as appearance of illusions in cosmonauts and astronauts after switching from 1 to 0 g have the same nature and are related to the change in character of otolith organs stimulation. Considering this similarity of vestibular reactions, using animals seems rather perspective. Besides it allows applying in experiments various invasive techniques.

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太空飞行后前庭的行为和功能紊乱。2. 鱼类、两栖动物和鸟类]。
这篇综述包含了鱼类、两栖动物和鸟类在失重条件下停留后耳石系统运行变化引起的功能变化的数据。这些数据对解决前庭学的一些基本问题具有重要的理论和实践意义。对太空实验结果的分析表明,失重条件对在太空飞行中发育的鱼类、两栖动物和鸟类胚胎耳石系统的形成和功能状态没有实质性影响。失重条件不会抑制低等脊椎动物的胚胎发育,甚至对其有相当有益的影响。这与有关哺乳动物胎儿发育的结论是一致的。实验结果表明,失重可以在低等脊椎动物和哺乳动物中引起类似的前庭功能和行为变化。例如,在一次轨道飞行后,幼鱼和蝌蚪(没有前凸)的前庭反射比对照个体强。大多数宇航员在短期轨道飞行后,耳石反射也有类似的变化。成年陆生脊椎动物和人类一样,在着陆后立即表现出更低的活动水平,更差的平衡和协调运动。宇宙探测器着陆后观察到的另一个有趣的发现是蝌蚪游泳时不寻常的环状特征。据推测,从1 g切换到0 g后,动物的异常运动活动以及宇航员和宇航员的幻觉出现具有相同的性质,并且与耳石器官刺激特性的变化有关。考虑到前庭反应的这种相似性,用动物来研究似乎更有远见。此外,它还允许在实验中应用各种侵入性技术。
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