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网格细胞模块化活动的自组织。

Selforganization of modular activity of grid cells.

机构信息

División de Física Estadística e Interdisciplinaria, Centro Atómico Bariloche, S. C. de Bariloche, Río Negro, 8400, Argentina.

Shenyang Institute of Automation, Chinese Academy of Sciences, Shenyang, 110016, China.

出版信息

Hippocampus. 2017 Nov;27(11):1204-1213. doi: 10.1002/hipo.22765. Epub 2017 Aug 14.

DOI:10.1002/hipo.22765
PMID:28768062
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5697658/
Abstract

A unique topographical representation of space is found in the concerted activity of grid cells in the rodent medial entorhinal cortex. Many among the principal cells in this region exhibit a hexagonal firing pattern, in which each cell expresses its own set of place fields (spatial phases) at the vertices of a triangular grid, the spacing and orientation of which are typically shared with neighboring cells. Grid spacing, in particular, has been found to increase along the dorso-ventral axis of the entorhinal cortex but in discrete steps, that is, with a modular structure. In this study, we show that such a modular activity may result from the self-organization of interacting units, which individually would not show discrete but rather continuously varying grid spacing. Within our "adaptation" network model, the effect of a continuously varying time constant, which determines grid spacing in the isolated cell model, is modulated by recurrent collateral connections, which tend to produce a few subnetworks, akin to magnetic domains, each with its own grid spacing. In agreement with experimental evidence, the modular structure is tightly defined by grid spacing, but also involves grid orientation and distortion, due to interactions across modules. Thus, our study sheds light onto a possible mechanism, other than simply assuming separate networks a priori, underlying the formation of modular grid representations.

摘要

在啮齿动物内侧前额叶皮层的网格细胞的协同活动中发现了一种独特的空间拓扑表示。该区域中的许多主要细胞表现出六边形的发射模式,其中每个细胞在三角形网格的顶点处表达自己的一组位置场(空间相位),网格的间距和方向通常与相邻细胞共享。特别是网格间距已被发现沿着内侧前额叶皮层的背腹轴增加,但以离散的步骤增加,即具有模块化结构。在这项研究中,我们表明,这种模块化活动可能是由于相互作用的单元的自组织导致的,这些单元本身不会显示离散的而是连续变化的网格间距。在我们的“适应”网络模型中,决定隔离细胞模型中网格间距的连续变化时间常数的影响受到局部侧枝连接的调制,这些局部侧枝连接倾向于产生几个子网,类似于磁畴,每个子网都有自己的网格间距。与实验证据一致,模块化结构由网格间距严格定义,但由于模块间的相互作用,也涉及到网格方向和变形。因此,我们的研究揭示了一种可能的机制,而不仅仅是简单地预先假设分离的网络,这是形成模块化网格表示的基础。

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本文引用的文献

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An efficient coding theory for a dynamic trajectory predicts non-uniform allocation of entorhinal grid cells to modules.一种用于动态轨迹的高效编码理论预测内嗅皮层网格细胞向模块的非均匀分配。
PLoS Comput Biol. 2017 Jun 19;13(6):e1005597. doi: 10.1371/journal.pcbi.1005597. eCollection 2017 Jun.
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Complete coverage of space favors modularity of the grid system in the brain.完整的空间覆盖有利于大脑网格系统的模块化。
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Physiological Properties of Neurons in Bat Entorhinal Cortex Exhibit an Inverse Gradient along the Dorsal-Ventral Axis Compared to Entorhinal Neurons in Rat.
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