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Function of the appendages in tentacled snakes (Erpeton tentaculatus)

机译:附肢在触角蛇(Erpeton tentaculatus)中的功能

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摘要

We investigated the function of the tentacles in aquatic, piscivorous tentacled snakes (Erpeton tentaculatus) by examining anatomy, peripheral innervation, and the response properties of primary afferents. We also investigated visual and somatosensory responses in the optic tectum and documented predatory strikes to visual stimuli and under infrared illumination. Our results show the tentacles are sensitive mechanoreceptors that respond to water movements. They are innervated by rami of the maxillary and ophthalmic branches of the trigeminal nerve and contain a dense array of fine terminal neurites that cross the interior of the tentacle orthogonal to its long axis. The optic tectum contained a retinotopic map of contralateral receptive fields with superior fields represented dorsally in the tectum, inferior fields represented laterally, nasal fields represented rostrally, and temporal fields represented caudally. Large somatosensory receptive fields were identified in deeper layers of the tectum and were in approximate register with overlying visual fields. Tentacled snakes struck accurately at a simulated digital fish, indicating that visual cues are sufficient to guide strikes, but they also captured fish under infrared illumination, suggesting water movements alone could be used to localize prey. We conclude the tentacles are mechanosensors that are used to detect fish position based on water movements and that visual and mechanosensory cues may be integrated in the tectum to enhance localization when visual cues are reduced.
机译:我们通过检查解剖结构,周围神经支配以及初级传入反应的响应特性,研究了触手在水生食性触手蛇(Erpeton tentaculatus)中的功能。我们还研究了视神经皮层的视觉和体感反应,并记录了对视觉刺激和红外照明的掠食性攻击。我们的结果表明,触角是敏感的机械感受器,能够响应水的运动。它们受三叉神经上颌和眼科分支的支支支配,并包含密集的细末神经突,横穿触手的长轴,正交于其长轴。视神经台包含对侧感受野的视网膜位图,其中上方视场表示在顶侧,下方视场表示侧向,鼻视场表示在鼻侧,颞视场表示尾侧。在覆盖层的较深层中发现了较大的体感感受野,并且与上方的视野大致吻合。触手可及的蛇准确地袭击了一条模拟的数字鱼,这表明视觉线索足以引导攻击,但它们也能在红外照明下捕获鱼,这表明仅靠水流就可以定位猎物。我们得出结论,触角是机械传感器,用于基于水的运动来检测鱼的位置,并且视觉和机械感官可能会整合到顶盖中,以在视觉提示减少时增强定位。

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