Wang Wenjing
School of Systems Science, Beijing Normal University, Beijing 100875, China.
Heliyon. 2021 Jan 27;7(1):e06087. doi: 10.1016/j.heliyon.2021.e06087. eCollection 2021 Jan.
The relationship between the firing of the grid cell and mesoscopic neural oscillations is one of the key issues to understand the neural mechanism of grid cells. Previous studies have focused more on the correspondence between neuronal firing and phases of oscillations, such as phase precession. There are also some conclusions about the relationship between the activity of grid cells and the intensity of neural oscillations, such as the disappearance of grid pattern caused by the blocking of theta rhythm, but the correlation between the firing rates of grid cells and the narrowband power of neural oscillations or the broadband LFP power is still scarce. Through analyzing the records of spike times of grid cells and local entorhinal EEG obtained by Hafting et al., in the spatial navigation experiment, we find that grid cells are, to a large proportion, a kind of broadband-shift neurons, and the positive correlation between grid cell activity and power of low theta and gamma bands was observed. These results have well verified, promoted, and connected many scattered research conclusions, such as the broadband shift phenomenon of hippocampal neurons, the influence of low theta activity on the firing pattern of grid cells, and the positive correlation between single-cell activity and gamma-band activity. This work is of great significance for the study of the neural mechanism of grid cells at the micro and mesoscopic levels, and may also inspire the use of indicators such as broadband power as markers for grid cell activity.
网格细胞放电与介观神经振荡之间的关系是理解网格细胞神经机制的关键问题之一。以往的研究更多地聚焦于神经元放电与振荡相位之间的对应关系,如相位进动。关于网格细胞活动与神经振荡强度之间的关系也有一些结论,比如θ节律阻断导致网格模式消失,但网格细胞放电率与神经振荡窄带功率或宽带局部场电位(LFP)功率之间的相关性仍然较少。通过分析哈夫廷等人在空间导航实验中获得的网格细胞放电时间记录和内嗅皮层局部脑电图,我们发现很大一部分网格细胞是一种宽带移位神经元,并且观察到网格细胞活动与低θ频段和γ频段功率之间存在正相关。这些结果很好地验证、推进并联系了许多分散的研究结论,如海马神经元的宽带移位现象、低θ活动对网格细胞放电模式的影响以及单细胞活动与γ频段活动之间的正相关。这项工作对于在微观和介观层面研究网格细胞的神经机制具有重要意义,也可能启发使用宽带功率等指标作为网格细胞活动的标记。