Hippocampal lesions impair non-navigational spatial memory in macaques

IF 2.4 3区 医学 Q3 NEUROSCIENCES
Hippocampus Pub Date : 2024-03-22 DOI:10.1002/hipo.23603
Patrick A. Forcelli, Elyssa M. LaFlamme, Hannah F. Waguespack, Richard C. Saunders, Ludise Malkova
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Abstract

Decades of studies robustly support a critical role for the hippocampus in spatial memory across a wide range of species. Hippocampal damage produces clear and consistent deficits in allocentric spatial memory that requires navigating through space in rodents, non-human primates, and humans. By contrast, damage to the hippocampus spares performance in most non-navigational spatial memory tasks—which can typically be resolved using egocentric cues. We previously found that transient inactivation of the hippocampus impairs performance in the Hamilton Search Task (HST), a self-ordered non-navigational spatial search task. A key question, however, still needs to be addressed. Acute, reversible inactivation of the hippocampus may have resulted in an impairment in the HST because this approach does not allow for neuroplastic compensation, may prevent the development of an alternative learning strategy, and/or may produce network-based effects that disrupt performance. We compared learning and performance on the HST in male rhesus macaques (six unoperated control animals and six animals that underwent excitotoxic lesions of the hippocampus). We found a significant impairment in animals with hippocampal lesions. While control animals improved in performance over the course of 45 days of training, performance in animals with hippocampal lesions remained at chance levels. The HST thus represents a sensitive assay for probing the integrity of the hippocampus in non-human primates. These data provide evidence demonstrating that the hippocampus is critical for this type of non-navigational spatial memory, and help to reconcile the many null findings previously reported.

海马体病变损害猕猴的非导航空间记忆
数十年的研究有力地证明了海马在众多物种的空间记忆中扮演着至关重要的角色。在啮齿类动物、非人灵长类动物和人类中,海马受损会导致需要在空间中导航的分配中心空间记忆出现明显而一致的缺陷。与此相反,海马体受损后,在大多数非导航性空间记忆任务中的表现都不会受到影响--这些任务通常可以通过以自我为中心的线索来解决。我们之前发现,海马体的短暂失活会影响汉密尔顿搜索任务(HST)的表现,这是一种自我排序的非导航性空间搜索任务。然而,一个关键问题仍有待解决。急性、可逆性海马失活可能会导致HST成绩受损,因为这种方法不允许神经可塑性补偿,可能会阻止替代学习策略的发展,和/或可能产生基于网络的效应,从而破坏成绩。我们比较了雄性猕猴(6 只未接受手术的对照组动物和 6 只接受海马兴奋性损伤的动物)在 HST 上的学习和表现。我们发现,海马受损的动物学习能力明显下降。在45天的训练过程中,对照组动物的表现有所改善,而海马受损动物的表现则保持在正常水平。因此,HST 是检测非人灵长类海马完整性的灵敏检测方法。这些数据提供了证据,证明海马对这种非导航性空间记忆至关重要,并有助于调和以前报告的许多无效发现。
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来源期刊
Hippocampus
Hippocampus 医学-神经科学
CiteScore
5.80
自引率
5.70%
发文量
79
审稿时长
3-8 weeks
期刊介绍: Hippocampus provides a forum for the exchange of current information between investigators interested in the neurobiology of the hippocampal formation and related structures. While the relationships of submitted papers to the hippocampal formation will be evaluated liberally, the substance of appropriate papers should deal with the hippocampal formation per se or with the interaction between the hippocampal formation and other brain regions. The scope of Hippocampus is wide: single and multidisciplinary experimental studies from all fields of basic science, theoretical papers, papers dealing with hippocampal preparations as models for understanding the central nervous system, and clinical studies will be considered for publication. The Editor especially encourages the submission of papers that contribute to a functional understanding of the hippocampal formation.
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