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首页> 外文期刊>The Journal of Experimental Biology >The spatiotemporal dynamics of rheotactic behavior depends on flow speed and available sensory information
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The spatiotemporal dynamics of rheotactic behavior depends on flow speed and available sensory information

机译:流变行为的时空动力学取决于流速和可用的感官信息

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摘要

Rheotaxis is a robust, multisensory behavior with many potential benefits for fish and other aquatic organisms. Visual (optic flow) cues appear to be sufficient for rheotaxis, but other sensory cues can clearly compensate for the loss of vision. Nevertheless, the nature of multisensory interactions and the relative contributions of different senses under varying conditions are poorly understood - largely because there is so little description of the actual behavior. Here, we examined the effects of different flow speeds and different sensory conditions on the spatiotemporal dynamics of rheotaxis. Although the overall ability of giant danio (Devario aequipinnatus) to head upstream is largely unaffected by either unimodal or bimodal deprivation of visual and/or lateral line senses, the spatiotemporal form of the behavior is altered in subtle ways. When deprived of vision, fish move further upstream, but the angular accuracy of the upstream heading is reduced. In addition, visually deprived fish exhibit left/right sweeping movements near the upstream barrier at low flow speeds. Sweeping movements are abolished when these fish are additionally deprived of lateral line information. These results indicate that fish adopt different sensorimotor strategies to compensate for the loss of one or more senses and that the nature of multisensory interactions is a complex function of flow speed.
机译:流变是一种稳健的多感官行为,对鱼类和其他水生生物具有许多潜在的好处。视觉(视光)线索似乎足以流血,但其他感觉线索可以清楚地弥补视力丧失。然而,人们对多感官互动的本质以及在不同条件下不同感觉的相对贡献知之甚少-很大程度上是因为对实际行为的描述很少。在这里,我们检查了不同流速和不同感官条件对流变时空动力学的影响。尽管巨型danio(Devario aequipinnatus)上游上游的整体能力在很大程度上不受视觉和/或侧线感官的单峰或双峰剥夺的影响,但行为的时空形式却以微妙的方式改变。当失去视力时,鱼会向上游移动,但上游航向的角度精度会降低。另外,视觉上被剥夺的鱼在低流速下在上游屏障附近表现出左右扫动运动。当这些鱼被另外剥夺了侧线信息时,扫掠运动将被取消。这些结果表明,鱼类采用不同的感觉运动策略来补偿一种或多种感官的丧失,并且多感官相互作用的性质是流速的复杂函数。

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