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在托尔曼迂回任务中,位置细胞的局部重映射。

Local remapping of place cell firing in the Tolman detour task.

机构信息

Laboratoire de Neurobiologie de la Cognition, CNRS, UMR 6155, F-13003 Marseille, France.

出版信息

Eur J Neurosci. 2011 May;33(9):1696-705. doi: 10.1111/j.1460-9568.2011.07653.x. Epub 2011 Mar 14.

DOI:10.1111/j.1460-9568.2011.07653.x
PMID:21395871
Abstract

The existence of place cells, whose discharge is strongly related to a rat's location in its environment, has led to the proposal that they form part of an integrated neural system dedicated to spatial navigation. It has been suggested that this system could represent space as a cognitive map, which is flexibly used by animals to plan new shortcuts or efficient detours. To further understand the relationships between hippocampal place cell firing and cognitive maps, we examined the discharge of place cells as rats were exposed to a Tolman-type detour problem. In specific sessions, a transparent barrier was placed onto the maze so as to block the shortest central path between the two rewarded end locations of a familiar three-way maze. We found that rats rapidly and consistently chose the shortest alternative detour. Furthermore, both CA1 and CA3 place cells that had a field in the vicinity of the barrier displayed local remapping. In contrast, neither CA1 nor CA3 cells that had a field away from the barrier were affected. This finding, at odds with our previous report of altered CA3 discharge for distant fields in a shortcut task, suggests that the availability of a novel path and the blocking of a familiar path are not equivalent and could lead to different responses of the CA3 place cell population. Together, the two studies point to a specific role of CA3 in the representation of spatial connectivity and sequences.

摘要

位置细胞的存在与老鼠在环境中的位置密切相关,这导致了它们形成了一个专门用于空间导航的集成神经网络系统的一部分的假说。有人提出,这个系统可以将空间表示为认知地图,动物可以灵活地使用它来规划新的捷径或有效的迂回路线。为了进一步了解海马体位置细胞放电与认知地图之间的关系,我们在老鼠面临托尔曼型迂回问题时检查了位置细胞的放电情况。在特定的实验中,一个透明的障碍物被放置在迷宫上,以阻挡熟悉的三臂迷宫的两个奖励末端之间最短的中央路径。我们发现老鼠迅速且一致地选择了最短的替代迂回路线。此外,在障碍物附近有场的 CA1 和 CA3 位置细胞都表现出局部重映射。相比之下,远离障碍物的 CA1 或 CA3 细胞都没有受到影响。这一发现与我们之前关于在捷径任务中遥远场的 CA3 放电改变的报告不一致,表明新路径的可用性和熟悉路径的阻塞并不等同,可能导致 CA3 位置细胞群体产生不同的反应。这两项研究共同指出了 CA3 在空间连接和序列表示中的特定作用。

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