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3D Hippocampal Place Field Dynamics in Free-Flying Echolocating Bats

机译:自由飞回蝙蝠中的3D海马位置场动力学

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摘要

A large body of laboratory research has investigated the process by which environmental cues are acquired and used for spatial navigation in rodents; however, the key to differentiating between species specializations and general principles lies in comparative research. Rodent research has focused on a class of neurons in the hippocampus implicated in the representation of allocentric space – termed place cells – and the process by which these representations form. One class of models of hippocampal place field formation depends on continuous theta, a low frequency brain oscillation that is prevalent in crawling rodents. Comparative studies of hippocampal activity in echolocating bats have reported many findings that parallel the rodent literature, but also describe noteworthy species differences, especially with respect to theta rhythm. Here, we first discuss studies of the bat hippocampal formation and point to gaps in our knowledge, which motivate our new lines of inquiry. We present data from the free-flying laryngeal echolocating big brown bat, which shows 3-D place cells without continuous theta, similar to reports from the lingual echolocating Egyptian fruit bat. We also report findings, which demonstrate that the animal’s control over echolocation call rate (sensory sampling) influences place field tuning. These results motivate future comparative research on hippocampal function in the context of natural sensory-guided behaviors.
机译:大量的实验室研究已经研究了获取环境线索并将其用于啮齿动物空间导航的过程。但是,区分物种专长和一般原则的关键在于比较研究。啮齿类动物的研究集中在海马中一类神经元,这些神经元与同素异形空间的表达(称为位置细胞)有关,并涉及这些表达的形成过程。一类海马场所场形成模型取决于连续θ,这是爬行的啮齿动物中普遍存在的低频大脑振荡。在回声定位的蝙蝠中海马活动的比较研究报告了许多与啮齿动物文献相似的发现,但也描述了值得注意的物种差异,尤其是关于θ节奏。在这里,我们首先讨论蝙蝠海马结构的研究,并指出我们的知识差距,这激发了我们新的研究思路。我们提供了来自自由飞行的喉部回声定位大棕色蝙蝠的数据,该数据显示3-D位置细胞没有连续的θ,类似于来自舌状回声定位的埃及果蝠的报道。我们还报告了发现结果,这些发现表明动物对回声定位呼叫率的控制(感官采样)会影响位置场的调整。这些结果激发了在自然感觉指导行为的背景下海马功能的未来比较研究。

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