Ijiri K
Radioisotope Center, University of Tokyo, Japan.
Adv Space Res. 2000;25(10):1997-2006. doi: 10.1016/s0273-1177(99)01005-4.
Vestibular and visual information are two major factors fish use for controlling their posture under 1 G conditions. Parabolic flight experiments were carried out to observe the fish behavior under microgravity for several different strains of Medaka fish (Oryzias latipes). There existed a clear strain-difference in the behavioral response of the fish under microgravity: Some strains looped, while other strains did not loop at all. However, even the latter strains looped under microgravity conditions when kept in complete darkness, suggesting the contribution of visual information to the posture control under microgravity. In the laboratory, eyesight (visual acuity) was checked for each strain, using a rotating striped-drum apparatus. The results also showed a strain-difference, which gave a clue to the different degree of adaptability to microgravity among different strains. Beside loopings, some fish exhibited rolling movement around their body axis. Tracing each fish during and between parabolas, it was shown that to which side each fish rolls was determined specifically to each individual fish, and not to each strain. Thus, rolling direction is not genetically determined. This may support the otolith asymmetry hypothesis. Fish of a mutant strain (ha strain, having homozygous recessive of one gene ha) have some malfunction in otolith-vestibular system, and their behavior showed they are not dependent on gravity. Morphological abnormalities of their ear vesicles during the embryonic and baby stages were noted. Their eyesight and dorsal light responses were also studied. Progress in the project of establishing a new strain which has good eyesight and, at the same time, being deficient in otolith-vestibular system was reported. Crosses between the strain of good eyesight and ha strain were made, and to some extent, F2 fish have already shown such characteristics suited for living under microgravity conditions.
前庭和视觉信息是鱼类在1G条件下控制姿势的两个主要因素。进行了抛物线飞行实验,以观察几种不同品系的青鳉鱼(Oryzias latipes)在微重力下的行为。鱼类在微重力下的行为反应存在明显的品系差异:一些品系会打转,而其他品系则根本不会打转。然而,即使是后一种品系,在完全黑暗的微重力条件下也会打转,这表明视觉信息对微重力下的姿势控制有贡献。在实验室中,使用旋转条纹鼓装置检查了每个品系的视力(视敏度)。结果也显示出品系差异,这为不同品系对微重力的不同适应程度提供了线索。除了打转,一些鱼还表现出围绕身体轴的滚动运动。在抛物线飞行期间和之间追踪每条鱼,结果表明每条鱼向哪一侧滚动是特定于每条个体鱼的,而不是每个品系。因此,滚动方向不是由基因决定的。这可能支持耳石不对称假说。一个突变品系(ha品系,具有一个基因ha的纯合隐性)的鱼在耳石-前庭系统中存在一些功能障碍,它们的行为表明它们不依赖于重力。在胚胎期和幼鱼期注意到了它们耳囊的形态异常。还研究了它们的视力和背侧光反应。报告了建立一个视力良好且同时耳石-前庭系统有缺陷的新品系项目的进展。进行了视力良好的品系与ha品系之间的杂交,在一定程度上,F2代鱼已经表现出适合在微重力条件下生存的特征。