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从计算建模的视角看海马体中的模式分离

Pattern separation in the hippocampus through the eyes of computational modeling.

作者信息

Chavlis Spyridon, Poirazi Panayiota

机构信息

Institute of Molecular Biology & Biotechnology (IMBB), Foundation for Research and Technology - Hellas (FORTH), N. Plastira 100, Heraklion, Crete, 70013, Greece.

Department of Biology, University of Crete, Vasilika Vouton, P.O. Box 2208, Heraklion, Crete, 71409, Greece.

出版信息

Synapse. 2017 Jun;71(6). doi: 10.1002/syn.21972. Epub 2017 Mar 27.

Abstract

Pattern separation is a mnemonic process that has been extensively studied over the years. It entails the ability -of primarily hippocampal circuits- to distinguish between highly similar inputs, via generating different neuronal activity (output) patterns. The dentate gyrus (DG) in particular has long been hypothesized to implement pattern separation by detecting and storing similar inputs as distinct representations. The ways in which these distinct representations can be generated have been explored in a number of theoretical and computational modeling studies. Here, we review two categories of pattern separation models: those that address the phenomenon in an abstract mathematical fashion and those that delve into the underlying biological mechanisms by taking into account the anatomy and/or physiology of hippocampal circuits. We summarize the strategies, findings and limitations of these modeling approaches in the light of new experimental findings and propose a unifying framework whereby different network, cellular and sub-cellular mechanisms converge to a common goal: controlling sparsity, the key determinant of pattern separation in the DG.

摘要

模式分离是一个多年来被广泛研究的记忆过程。它需要主要是海马回路的能力,通过生成不同的神经元活动(输出)模式来区分高度相似的输入。特别是齿状回(DG)长期以来一直被假设通过将相似的输入检测并存储为不同的表征来实现模式分离。在许多理论和计算建模研究中已经探索了生成这些不同表征的方式。在这里,我们回顾两类模式分离模型:一类是以抽象数学方式处理该现象的模型,另一类是通过考虑海马回路的解剖结构和/或生理学来深入探究潜在生物学机制的模型。我们根据新的实验结果总结这些建模方法的策略、发现和局限性,并提出一个统一框架,据此不同的网络、细胞和亚细胞机制汇聚到一个共同目标:控制稀疏性,这是DG中模式分离的关键决定因素。

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