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网格细胞需要来自海马体的兴奋性驱动。

Grid cells require excitatory drive from the hippocampus.

机构信息

Kavli Institute for Systems Neuroscience and Centre for the Biology of Memory, Norwegian Brain Centre, Norwegian University of Science and Technology, Trondheim, Norway.

出版信息

Nat Neurosci. 2013 Mar;16(3):309-17. doi: 10.1038/nn.3311. Epub 2013 Jan 20.

Abstract

To determine how hippocampal backprojections influence spatially periodic firing in grid cells, we recorded neural activity in the medial entorhinal cortex (MEC) of rats after temporary inactivation of the hippocampus. We report two major changes in entorhinal grid cells. First, hippocampal inactivation gradually and selectively extinguished the grid pattern. Second, the same grid cells that lost their grid fields acquired substantial tuning to the direction of the rat's head. This transition in firing properties was contingent on a drop in the average firing rate of the grid cells and could be replicated by the removal of an external excitatory drive in an attractor network model in which grid structure emerges by velocity-dependent translation of activity across a network with inhibitory connections. These results point to excitatory drive from the hippocampus, and possibly other regions, as one prerequisite for the formation and translocation of grid patterns in the MEC.

摘要

为了确定海马体的反向投射如何影响网格细胞的空间周期性放电,我们在暂时抑制海马体后,记录了大鼠内嗅皮层(MEC)中的神经活动。我们报告了内嗅网格细胞的两个主要变化。首先,海马体的失活逐渐且选择性地消除了网格模式。其次,那些失去网格场的相同网格细胞对大鼠头部方向有显著的调谐。这种放电特性的转变取决于网格细胞平均放电率的下降,并且可以通过在吸引子网络模型中去除外部兴奋性驱动来复制,其中网格结构通过在具有抑制性连接的网络中活动的速度依赖性平移而出现。这些结果表明,来自海马体的兴奋性驱动,以及可能来自其他区域的驱动,是 MEC 中网格模式形成和迁移的一个前提条件。

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