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迈向导航的自然主义神经科学:珊瑚鱼的机遇。

Toward Naturalistic Neuroscience of Navigation: Opportunities in Coral Reef Fish.

机构信息

Department of Life Sciences, Ben-Gurion University of the Negev, Beersheba, Israel.

Zlotowski Center for Neuroscience, Ben-Gurion University of the Negev, Beersheba, Israel.

出版信息

Front Neural Circuits. 2022 Jul 5;16:895381. doi: 10.3389/fncir.2022.895381. eCollection 2022.

Abstract

The ability to navigate in the world is crucial to many species. One of the most fundamental unresolved issues in understanding animal navigation is how the brain represents spatial information. Although navigation has been studied extensively in many taxa, the key efforts to determine the neural basis of navigation have focused on mammals, usually in lab experiments, where the allocated space is typically very small; e.g., up to one order of magnitude the size of the animal, is limited by artificial walls, and contains only a few objects. This type of setting is vastly different from the habitat of animals in the wild, which is open in many cases and is virtually limitless in size compared to its inhabitants. Thus, a fundamental open question in animal navigation is whether small-scale, spatially confined, and artificially crafted lab experiments indeed reveal how navigation is enacted in the real world. This question is difficult to study given the technical problems associated with electrophysiology in natural settings. Here, we argue that these difficulties can be overcome by implementing state of the art technology when studying the rivulated rabbitfish, as the model animal. As a first step toward this goal, using acoustic tracking of the reef, we demonstrate that individual have a defined home range of about 200 m in length, from which they seldom venture. They repeatedly visit the same areas and return to the same sleeping grounds, thus providing evidence for their ability to navigate in the reef environment. Using a clustering algorithm to analyze segments of daily trajectories, we found evidence of specific repeating patterns in behavior within the home range of individual fish. Thus, appears to have the ability to carry out its daily routines and revisit places of interest by employing sophisticated means of navigation while exploring its surroundings. In the future, using novel technologies for wireless recording from single cells of fish brains, can emerge as an ideal system to study the neural basis of navigation in natural settings and lead to "electrophysiology in the wild."

摘要

在世界中导航的能力对许多物种至关重要。理解动物导航的最基本的未解问题之一是大脑如何表示空间信息。尽管在许多类群中已经广泛研究了导航,但确定导航的神经基础的关键努力主要集中在哺乳动物上,通常是在实验室实验中,其中分配的空间通常非常小;例如,只有动物大小的一个数量级,受到人工墙壁的限制,并且只包含几个物体。这种类型的设置与野生动物的栖息地有很大的不同,野生动物的栖息地在许多情况下是开放的,与居住者相比,其大小实际上是无限的。因此,动物导航中的一个基本问题是,小规模、空间受限和人为制作的实验室实验是否确实揭示了导航在现实世界中的实施方式。由于在自然环境中进行电生理学研究相关的技术问题,这个问题很难研究。在这里,我们认为,当研究模型动物波纹兔鱼时,通过实施最先进的技术可以克服这些困难。作为实现这一目标的第一步,我们使用对珊瑚礁的声学跟踪,证明了个体具有约 200 米长的特定家域,它们很少冒险离开这个家域。它们反复访问相同的区域并返回相同的睡眠地点,从而证明了它们在珊瑚礁环境中导航的能力。使用聚类算法分析个体日常轨迹的片段,我们发现了个体在家域内行为的特定重复模式的证据。因此,波纹兔鱼似乎具有通过使用复杂的导航手段来执行日常例行程序并重新访问感兴趣的地方的能力,同时探索其周围环境。将来,使用用于从鱼脑的单个细胞进行无线记录的新技术,波纹兔鱼可以成为在自然环境中研究导航的神经基础的理想系统,并导致“野外电生理学”的出现。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b1a1/9298462/6795a1656eab/fncir-16-895381-g001.jpg

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