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在奔跑的大鼠中,θ节律的频率由加速度控制,而不是速度。

Frequency of theta rhythm is controlled by acceleration, but not speed, in running rats.

机构信息

Kavli Institute for Systems Neuroscience and Centre for Neural Computation, Norwegian University of Science and Technology (NTNU), NO-7491 Trondheim, Norway; Leloir Institute-IIBBA-CONICET, Buenos Aires 1405BWE, Argentina.

Kavli Institute for Systems Neuroscience and Centre for Neural Computation, Norwegian University of Science and Technology (NTNU), NO-7491 Trondheim, Norway.

出版信息

Neuron. 2021 Mar 17;109(6):1029-1039.e8. doi: 10.1016/j.neuron.2021.01.017. Epub 2021 Feb 9.

Abstract

The theta rhythm organizes neural activity across hippocampus and entorhinal cortex. A role for theta oscillations in spatial navigation is supported by half a century of research reporting that theta frequency encodes running speed linearly so that displacement can be estimated through theta frequency integration. We show that this relationship is an artifact caused by the fact that the speed of freely moving animals could not be systematically disentangled from acceleration. Using an experimental procedure that clamps running speed at pre-set values, we find that the theta frequency of local field potentials and spike activity is linearly related to positive acceleration, but not negative acceleration or speed. The modulation by positive-only acceleration makes rhythmic activity at theta frequency unfit as a code to compute displacement or any other kinematic variable. Temporally precise variations in theta frequency may instead serve as a mechanism for speeding up entorhinal-hippocampal computations during accelerated movement.

摘要

θ 节律组织海马体和内嗅皮层的神经活动。半个世纪的研究报告表明,θ 振荡在空间导航中起作用,θ 频率线性地编码跑步速度,因此可以通过 θ 频率积分来估计位移。我们表明,这种关系是一种假象,原因是自由移动动物的速度不能与加速度系统地分离。使用一种将跑步速度固定在预设值的实验程序,我们发现局部场电位和尖峰活动的θ 频率与正加速度呈线性相关,但与负加速度或速度无关。正加速度的调制使得θ 频率的节奏活动不适合作为计算位移或任何其他运动变量的代码。θ 频率的时间精确变化可能反而作为在加速运动期间加速内嗅-海马计算的机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6471/7980093/5bf4eec08957/gr1.jpg

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