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Grid cell firing properties vary as a function of theta phase locking preferences in the rat medial entorhinal cortex

机译:网格细胞放电特性随大鼠内侧内嗅皮层的θ锁相偏好而变化

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摘要

Theta rhythmic fluctuations in the hippocampal–entorhinal circuit are believed to reflect rapid transitions between modes of mnemonic processing. Specifically, activity at the trough and peak of CA1 pyramidal layer theta is thought to correspond to retrieval and encoding related processing, respectively. Spatially tuned “grid cells” in layers II and III of the medial entorhinal cortex preferentially spike during the trough and peak phases of theta, respectively. Such differences suggest differential involvement of these layers to the processes of retrieval and encoding. It remains unknown, however, if the properties of grid cells that spike preferentially at the trough vs. the peak of theta differ systematically. Such putative differences would offer insights into the differential processing that occurs during these two phases. The goal of the present work was to contrast these types of grid cells. We found that significant functional dissociations do exist: trough locked grid cells carried more spatial information, had a higher degree of head direction tuning, and were more likely to phase precess. Thus, grid cells that activate during the putative retrieval phase of theta (trough) have a greater degree of location, orientation, and temporal tuning specificity relative to grid cells that activate during the putative encoding phase (peak), potentially reflecting the influence of the retrieved content. Additionally, trough locked grid cells had a lower average firing rate, were more likely to burst, and were less phase locked to high-gamma (∼80 Hz). Further analyses revealed they had different waveforms profiles and that systemic blockade of muscarinic acetylcholine receptors reduced the spatial tuning of both types, although these differences were only significant for the peak locked grid cells. These differences suggest that trough and peak locked grid cells are distinct populations of neurons.
机译:据认为,海马-肠胃循环的θ节律性波动反映了记忆处理模式之间的快速过渡。具体而言,CA1金字塔层theta的波谷和波峰的活动分别被认为与检索和编码相关的处理相对应。内侧内嗅皮层的第II层和第III层中的空间调谐“网格细胞”分别在theta的波谷和波峰阶段优先突增。这种差异表明这些层对检索和编码过程的不同参与。但是,是否优先在波谷相对于θ峰值突刺的网格单元的属性是否系统地不同,仍然是未知的。这样的假定差异将提供对这两个阶段中发生的差异处理的见解。本工作的目的是对比这些类型的网格单元。我们发现确实存在显着的功能分离:低谷锁定网格单元承载更多的空间信息,具有更高的磁头方向调整度,并且更有可能进行相位进动。因此,相对于在假定编码阶段(峰值)激活的网格单元,在theta(谷)的推定检索阶段激活的网格单元具有更大程度的位置,方向和时间调整特异性。检索的内容。此外,槽形锁定的网格单元平均发射率较低,更容易爆裂,并且对高伽玛(〜80 Hz)的相位锁定较少。进一步的分析表明,它们具有不同的波形图,并且毒蕈碱乙酰胆碱受体的系统性阻断降低了两种类型的空间调谐,尽管这些差异仅对于峰锁定网格细胞有意义。这些差异表明谷底和峰锁定的网格细胞是神经元的不同种群。

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