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相位编码在无节律性情况下的优势和检测。

Advantages and detection of phase coding in the absence of rhythmicity.

机构信息

UCL Institute of Cognitive Neuroscience, London, UK.

UCL Queen Square Institute of Neurology, London, UK.

出版信息

Hippocampus. 2020 Jul;30(7):745-762. doi: 10.1002/hipo.23199. Epub 2020 Feb 17.

Abstract

The encoding of information in spike phase relative to local field potential (LFP) oscillations offers several theoretical advantages over equivalent firing rate codes. One notable example is provided by place and grid cells in the rodent hippocampal formation, which exhibit phase precession-firing at progressively earlier phases of the 6-12 Hz movement-related theta rhythm as their spatial firing fields are traversed. It is often assumed that such phase coding relies on a high amplitude baseline oscillation with relatively constant frequency. However, sustained oscillations with fixed frequency are generally absent in LFP and spike train recordings from the human brain. Hence, we examine phase coding relative to LFP signals with broadband low-frequency (2-20 Hz) power but without regular rhythmicity. We simulate a population of grid cells that exhibit phase precession against a baseline oscillation recorded from depth electrodes in human hippocampus. We show that this allows grid cell firing patterns to multiplex information about location, running speed and movement direction, alongside an arbitrary fourth variable encoded in LFP frequency. This is of particular importance given recent demonstrations that movement direction, which is essential for path integration, cannot be recovered from head direction cell firing rates. In addition, we investigate how firing phase might reduce errors in decoded location, including those arising from differences in firing rate across grid fields. Finally, we describe analytical methods that can identify phase coding in the absence of high amplitude LFP oscillations with approximately constant frequency, as in single unit recordings from the human brain and consistent with recent data from the flying bat. We note that these methods could also be used to detect phase coding outside of the spatial domain, and that multi-unit activity can substitute for the LFP signal. In summary, we demonstrate that the computational advantages offered by phase coding are not contingent on, and can be detected without, regular rhythmicity in neural activity.

摘要

尖峰相位相对于局部场电位 (LFP) 振荡的信息编码相对于等效的放电率编码具有几个理论优势。啮齿动物海马结构中的位置和网格细胞就是一个显著的例子,它们在 6-12 Hz 与运动相关的 theta 节律的相位提前阶段表现出放电,随着其空间放电场的穿越而逐渐提前。人们通常认为这种相位编码依赖于具有相对恒定频率的高振幅基线振荡。然而,在来自人类大脑的 LFP 和尖峰序列记录中,具有固定频率的持续振荡通常不存在。因此,我们研究了相对于具有宽带低频(2-20 Hz)功率但没有规则节律性的 LFP 信号的相位编码。我们模拟了一群网格细胞,它们相对于从人类海马体深部电极记录的基线振荡表现出相位超前。我们表明,这允许网格细胞的放电模式对位置、运行速度和运动方向的信息进行复用,以及 LFP 频率中编码的任意第四个变量。这一点非常重要,因为最近的研究表明,对于路径整合至关重要的运动方向不能从头部方向细胞的放电率中恢复。此外,我们研究了放电相位如何减少解码位置的误差,包括由于网格场中的放电率差异而产生的误差。最后,我们描述了可以在没有大约恒定频率的高振幅 LFP 振荡的情况下识别相位编码的分析方法,这与从人类大脑的单个单元记录以及从飞行蝙蝠的最新数据一致。我们注意到,这些方法也可用于检测空间域之外的相位编码,并且多单元活动可以替代 LFP 信号。总之,我们证明了相位编码提供的计算优势不依赖于神经活动的规则节律性,并且可以在没有这种节律性的情况下检测到。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0789/7383596/c27893f128ac/HIPO-30-745-g001.jpg

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