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本文引用的文献

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Influence of boundary removal on the spatial representations of the medial entorhinal cortex.边界去除对内侧内嗅皮层空间表征的影响。
Hippocampus. 2008;18(12):1270-82. doi: 10.1002/hipo.20511.
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Conversion of a phase- to a rate-coded position signal by a three-stage model of theta cells, grid cells, and place cells.通过θ细胞、网格细胞和位置细胞的三阶段模型将相位编码位置信号转换为速率编码位置信号。
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Progressive increase in grid scale from dorsal to ventral medial entorhinal cortex.从背侧到腹内侧内嗅皮质,网格细胞尺度逐渐增大。
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Grid cells and theta as oscillatory interference: electrophysiological data from freely moving rats.网格细胞与作为振荡干扰的θ波:来自自由活动大鼠的电生理数据
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Finite scale of spatial representation in the hippocampus.海马体中空间表征的有限尺度
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What grid cells convey about rat location.网格细胞传达的关于大鼠位置的信息。
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9
Hippocampus-independent phase precession in entorhinal grid cells.内嗅皮层网格细胞中不依赖海马体的相位进动
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10
Theta phase-specific codes for two-dimensional position, trajectory and heading in the hippocampus.海马体中二维位置、轨迹和方向的θ相位特异性编码。
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网格细胞与作为振荡干扰的θ波:理论与预测

Grid cells and theta as oscillatory interference: theory and predictions.

作者信息

Burgess Neil

机构信息

Institute of Cognitive Neuroscience, University College London.

出版信息

Hippocampus. 2008;18(12):1157-74. doi: 10.1002/hipo.20518.

DOI:10.1002/hipo.20518
PMID:19021256
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3196519/
Abstract

The oscillatory interference model [Burgess et al. (2007) Hippocampus 17:801-802] of grid cell firing is reviewed as an algorithmic level description of path integration and as an implementation level description of grid cells and their inputs. New analyses concern the relationships between the variables in the model and the theta rhythm, running speed, and the intrinsic firing frequencies of grid cells. New simulations concern the implementation of velocity-controlled oscillators (VCOs) with different preferred directions in different neurons. To summarize the model, the distance traveled along a specific direction is encoded by the phase of a VCO relative to a baseline frequency. Each VCO is an intrinsic membrane potential oscillation whose frequency increases from baseline as a result of depolarization by synaptic input from speed modulated head-direction cells. Grid cell firing is driven by the VCOs whose preferred directions match the current direction of motion. VCOs are phase-reset by location-specific input from place cells to prevent accumulation of error. The baseline frequency is identified with the local average of VCO frequencies, while EEG theta frequency is identified with the global average VCO frequency and comprises two components: the frequency at zero speed and a linear response to running speed. Quantitative predictions are given for the inter-relationships between a grid cell's intrinsic firing frequency and grid scale, the two components of theta frequency, and the running speed of the animal. Qualitative predictions are given for the properties of the VCOs, and the relationship between environmental novelty, the two components of theta, grid scale and place cell remapping.

摘要

网格细胞放电的振荡干扰模型[Burgess等人(2007年),《海马体》17卷:801 - 802页]被视为路径积分的算法层面描述以及网格细胞及其输入的实现层面描述。新的分析涉及模型中变量与theta节律、奔跑速度以及网格细胞固有放电频率之间的关系。新的模拟涉及在不同神经元中具有不同偏好方向的速度控制振荡器(VCO)的实现。总结该模型,沿特定方向行进的距离由VCO相对于基线频率的相位编码。每个VCO是一种固有膜电位振荡,其频率由于来自速度调制的头部方向细胞的突触输入去极化而从基线增加。网格细胞放电由偏好方向与当前运动方向匹配的VCO驱动。VCO通过来自位置细胞的位置特异性输入进行相位重置,以防止误差积累。基线频率与VCO频率的局部平均值相关,而脑电图theta频率与VCO频率的全局平均值相关,并且包括两个成分:零速度时的频率和对奔跑速度的线性响应。给出了关于网格细胞固有放电频率与网格尺度、theta频率的两个成分以及动物奔跑速度之间相互关系的定量预测。给出了关于VCO特性以及环境新奇性、theta的两个成分、网格尺度和位置细胞重映射之间关系的定性预测。