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鸟类海马结构研究的成熟:来自自然界最重要导航者之一的最新发现。

The maturation of research into the avian hippocampal formation: Recent discoveries from one of the nature's foremost navigators.

作者信息

Herold Christina, Coppola Vincent J, Bingman Verner P

机构信息

C. & O. Vogt-Institute of Brain Research, University of Düsseldorf, Düsseldorf, Germany.

Department of Psychology, J. P. Scott Center for Neuroscience, Bowling Green State University, Bowling Green, Ohio.

出版信息

Hippocampus. 2015 Nov;25(11):1193-211. doi: 10.1002/hipo.22463. Epub 2015 Apr 22.

Abstract

For more than 30 years, a growing number of researchers have been attracted to the challenge of understanding the neurobiological organization of the avian hippocampal formation (HF) and its relationship to the remarkable spatial cognitive abilities of birds. In this selective review, we highlight recent anatomical and developmental findings that reveal a HF design that defies any simple comparison to the mammalian hippocampus and leaves unanswered the seemingly enduring question of whether a dentate gyrus homologue is to be found in HF. From a functional perspective, we highlight the recent discoveries that implicate HF in the use of space for memory pattern segregation and continued interest in the role HF neurogenesis may play in supporting memory function and its relationship to memory decline in aging birds. We also summarize data that nurture a fundamental reinterpretation of the role of HF in spatial cognition by suggesting HF involvement in spatial perception antecedent to any memory formation. Given the disproportionate adaptive significance of space for birds, which has led to the evolution of their exceptional navigational and memory abilities, there is little doubt that the avian HF will continue to provide important and unexpected insights into the neural basis of spatial cognition.

摘要

三十多年来,越来越多的研究人员被理解鸟类海马结构(HF)的神经生物学组织及其与鸟类卓越空间认知能力之间关系这一挑战所吸引。在这篇选择性综述中,我们强调了最近的解剖学和发育学发现,这些发现揭示了一种HF设计,它无法与哺乳动物海马进行任何简单的比较,并且遗留了一个看似长期存在的问题未得到解答,即是否能在HF中找到齿状回同源物。从功能角度来看,我们强调了最近的发现,这些发现表明HF参与利用空间进行记忆模式分离,并且人们持续关注HF神经发生在支持记忆功能以及与衰老鸟类记忆衰退的关系中可能发挥的作用。我们还总结了一些数据,这些数据通过表明HF在任何记忆形成之前就参与空间感知,从而促使对HF在空间认知中作用的根本重新解释。鉴于空间对鸟类具有不成比例的适应性意义,这导致了它们非凡的导航和记忆能力的进化,毫无疑问,鸟类HF将继续为空间认知的神经基础提供重要且意想不到的见解。

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