首页> 外文期刊>Canadian Journal of Zoology >Lateral-line activity during undulatory body motions suggests a feedback link in closed-loop control of sea lamprey swimming
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Lateral-line activity during undulatory body motions suggests a feedback link in closed-loop control of sea lamprey swimming

机译:波动性身体运动过程中的侧线活动提示了海七rey鳗游泳闭环控制中的反馈环节

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摘要

The lateral-line system is common to most aquatic organisms. It plays an important role in behaviours involving detection of other animals and obstacles. In gnathostome fishes, these behaviours appear to be dependent on an efferent inhibitory system that filters out stimuli caused by the animal's own movement. Sea lampreys (Petromyzon marinus L., 1758), the most basal extant vertebrate, possess a functional lateral-line system. Yet they completely lack the inhibitory efferent system. Thus, they may use the lateral line to sense their own swimming movements, helping to stabilize swimming. To test this hypothesis, we first investigated the kinematics of free-swimming lampreys. In an intact tethered preparation, we then generated undualatory body motions of comparable amplitude and frequency to swimming, while monitoring the evoked responses of the posterior lateral-line nerve. Last, we tested the effect of eliminating lateral-line inputs by cobalt treatment. In the tethered preparation, we recorded distinctive and consistent activity in the lateral-line nerve that was strongly dependent on characteristics of the motion. We found that distinct characteristics of the rhythmic movements are encoded in the temporal characteristics of the response. Swimming kinematics of cobalt-treated animals differed from controls, suggesting a complex, yet necessary role of the lateral-line system in closed-loop control of swimming.
机译:侧线系统是大多数水生生物所共有的。它在涉及发现其他动物和障碍物的行为中起重要作用。在gnathostome鱼类中,这些行为似乎依赖于一种传出的抑制系统,该系统能过滤掉由动物自身运动引起的刺激。海七rey鱼(Petromyzon marinus L.,1758)是现存最基础的脊椎动物,具有功能性的侧线系统。但是它们完全缺乏抑制性传出系统。因此,他们可以使用侧线来感知自己的游泳动作,从而有助于稳定游泳。为了验证这一假设,我们首先研究了自由游泳的油烟的运动学。在完整的系留准备中,我们随后产生了与游泳相当的幅度和频率的不固定的身体运动,同时监视了后侧支神经的诱发反应。最后,我们测试了通过钴处理消除侧线输入的效果。在栓系准备中,我们在侧线神经中记录了独特而一致的活动,该活动强烈依赖于运动特征。我们发现节奏运动的独特特征被编码在响应的时间特征中。钴处理动物的游泳运动学与对照组不同,这表明侧线系统在游泳的闭环控制中具有复杂而必要的作用。

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