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The Representation of Three-Dimensional Space in Fish

机译:鱼中三维空间的表示

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摘要

In mammals, the so-called “seat of the cognitive map” is located in place cells within the hippocampus. Recent work suggests that the shape of place cell fields might be defined by the animals’ natural movement; in rats the fields appear to be laterally compressed (meaning that the spatial map of the animal is more highly resolved in the horizontal dimensions than in the vertical), whereas the place cell fields of bats are statistically spherical (which should result in a spatial map that is equally resolved in all three dimensions). It follows that navigational error should be equal in the horizontal and vertical dimensions in animals that travel freely through volumes, whereas in surface-bound animals would demonstrate greater vertical error. Here, we describe behavioral experiments on pelagic fish in which we investigated the way that fish encode three-dimensional space and we make inferences about the underlying processing. Our work suggests that fish, like mammals, have a higher order representation of space that assembles incoming sensory information into a neural unit that can be used to determine position and heading in three-dimensions. Further, our results are consistent with this representation being encoded isotropically, as would be expected for animals that move freely through volumes. Definitive evidence for spherical place fields in fish will not only reveal the neural correlates of space to be a deep seated vertebrate trait, but will also help address the questions of the degree to which environment spatial ecology has shaped cognitive processes and their underlying neural mechanisms.
机译:在哺乳动物中,所谓的“认知图座位”位于海马内的细胞内。最近的研究表明,位置细胞场的形状可能是由动物的自然运动来定义的。在大鼠中,场似乎是侧向压缩的(意味着动物的空间图在水平方向上比在垂直方向上分辨率更高),而蝙蝠的位置细胞场在统计上是球形的(应该得到空间图)在所有三个维度上均得到了解决)。由此得出结论,在自由通过体积的动物中,水平和垂直方向的导航误差应相等,而在表面约束的动物中,垂直误差会更大。在这里,我们描述了中上鱼类的行为实验,在该实验中,我们研究了鱼类编码三维空间的方式,并推断了其潜在的加工过程。我们的工作表明,鱼类与哺乳动物一样,具有较高的空间表示形式,它将传入的感官信息组装到一个神经单元中,该神经单元可用于确定三维位置和航向。此外,我们的结果与这种表示法是各向同性的,这与自由移动体积的动物所期望的一致。关于鱼类球形放置场的明确证据不仅将揭示与深层脊椎动物特征相关的空间神经相关性,而且还将有助于解决环境空间生态在多大程度上影响认知过程及其潜在神经机制的问题。

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