Sparsity of Population Activity in the Hippocampus Is Task-Invariant Across the Trisynaptic Circuit and Dorsoventral Axis

IF 2.4 3区 医学 Q3 NEUROSCIENCES Hippocampus Pub Date : 2024-12-02 DOI:10.1002/hipo.23651
J. Quinn Lee, Matt Nielsen, Rebecca McHugh, Erik Morgan, Nancy S. Hong, Robert J. Sutherland, Robert J. McDonald
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Abstract

Evidence from neurophysiological and genetic studies demonstrates that activity sparsity—the proportion of neurons that are active at a given time in a population—systematically varies across the canonical trisynaptic circuit of the hippocampus. Recent work has also shown that sparsity varies across the hippocampal dorsoventral (long) axis, wherein activity is sparser in ventral than dorsal regions. While the hippocampus has a critical role in long-term memory (LTM), whether sparsity across the trisynaptic circuit and hippocampal long axis is task-dependent or invariant remains unknown. Importantly, representational sparsity has significant implications for neural computation and theoretical models of learning and memory within and beyond the hippocampus. Here we used functional molecular imaging to quantify sparsity in the rat hippocampus during performance of the Morris water task (MWT) and contextual fear discrimination (CFD) – two popular and distinct assays of LTM. We found that activity sparsity is highly reliable across memory tasks, wherein activity increases sequentially across the trisynaptic circuit (DG < CA3 < CA1) and decreases across the long axis (ventral<dorsal). These results have important implications for models of hippocampal function and suggest that activity sparsity is a preserved property in the hippocampal system across cognitive settings.

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海马种群活动的稀疏性在三突触回路和背腹侧轴上是任务不变的
来自神经生理学和遗传学研究的证据表明,活动稀疏度——在一个群体中特定时间活跃的神经元的比例——在海马体的典型三突触回路中有系统地变化。最近的研究也表明,海马背腹侧(长)轴的稀疏性各不相同,其中腹侧区域的活动比背侧区域少。虽然海马体在长期记忆(LTM)中起着至关重要的作用,但三突触回路和海马体长轴的稀疏性是任务依赖的还是不变的仍然未知。重要的是,表征稀疏性对海马体内外的学习和记忆的神经计算和理论模型具有重要意义。在这里,我们使用功能分子成像来量化大鼠在莫里斯水任务(MWT)和情境恐惧辨别(CFD)时海马的稀疏度,这是两种流行且不同的LTM分析方法。我们发现活动稀疏度在记忆任务中是高度可靠的,其中活动在三突触回路(DG < CA3 < CA1)上依次增加,而在长轴(腹侧<;背侧)上依次减少。这些结果对海马体功能模型具有重要意义,并表明活动稀疏性是海马体系统在认知设置中保留的属性。
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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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