首页> 美国卫生研究院文献>Philosophical Transactions of the Royal Society B: Biological Sciences >Detection and processing of electromagnetic and near-field acoustic signals in elasmobranch fishes.
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Detection and processing of electromagnetic and near-field acoustic signals in elasmobranch fishes.

机译:弹processing鱼类中电磁和近场声信号的检测和处理。

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摘要

The acoustic near field of quietly moving underwater objects and the bio-electric field of aquatic animals exhibit great similarity, as both are predominantly governed by Laplace's equation. The acoustic and electrical sensory modalities thus may, in directing fishes to their prey, employ analogous processing algorithms, suggesting a common evolutionary design, founded on the salient physical features shared by the respective stimulus fields. Sharks and rays are capable of orientating to the earth's magnetic field and, hence, have a magnetic sense. The electromagnetic theory of orientation offers strong arguments for the animals using the electric fields induced by ocean currents and by their own motions in the earth's magnetic field. In the animal's frame of reference, in which the sense organs are at rest, the classical concept of motional electricity must be interpreted in relativistic terms. In the ampullae of Lorenzini, weak electric fields cause the ciliated apical receptor-cell membranes to produce graded, negative receptor currents opposite in direction to the fields applied. The observed currents form part of a positive-feedback mechanism, supporting the generation of receptor potentials much larger than the input signal. Acting across the basal cell membranes, the receptor potentials control the process of synaptic transmission.
机译:安静运动的水下物体的声波近场与水生动物的生物电场具有很大的相似性,因为两者主要受拉普拉斯方程控制。因此,在将鱼引向猎物时,声音和电子的感觉模态可以采用类似的处理算法,从而提出一种共同的进化设计,其建立在各个刺激场共有的显着物理特征的基础上。鲨鱼和射线能够定向到地球的磁场,因此具有磁性。定向电磁理论为动物利用洋流感应的电场以及它们自身在地球磁场中的运动提供了强有力的论据。在动物的参照系中,感觉器官处于静止状态,动电的经典概念必须用相对论的术语来解释。在洛伦齐尼壶腹中,弱电场导致纤毛的顶端受体细胞膜产生与施加电场方向相反的梯度负受体电流。观察到的电流构成正反馈机制的一部分,支持产生比输入信号大得多的受体电势。受体电位作用于整个基底细胞膜,控制着突触传递的过程。

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