KU Leuven, Department of Rehabilitation Sciences, Research Group for Neurorehabilitation, Tervuursevest 101 box 1501, 3001 Leuven, Belgium.
KU Leuven, Department of Rehabilitation Sciences, Research Group for Neurorehabilitation, Tervuursevest 101 box 1501, 3001 Leuven, Belgium.
Psychoneuroendocrinology. 2021 Nov;133:105397. doi: 10.1016/j.psyneuen.2021.105397. Epub 2021 Aug 27.
Shifts in the peak frequencies of oscillatory neural rhythms have been put forward as a principal mechanism by which cross-frequency coupling and decoupling is implemented in the brain. This notion is based on the mathematical reality that neural oscillations can only fully synchronize when their peak frequencies form harmonic 2:1 relationships (e.g., f=f/2). Non-harmonic cross-frequency relationships, on the other hand (based on the irrational golden mean 1.618.:1), provide the highest physiologically possible desynchronized state (reducing the occurrence of spurious, noisy, background coupling), and are therefore anticipated to characterize the resting state of the brain, in which no selective information processing takes place. The present study sought to assess whether the transient occurrence of 1.6:1 non-harmonic and 2:1 harmonic relationships between peak frequencies in the alpha (8-14 Hz) and theta (4-8 Hz) bands - respectively facilitating states of decoupling or coupling between oscillatory rhythms - are impacted by the intranasal administration of a single-dose of oxytocin (OT) or placebo. To do so, continuous resting-state electroencephalography (5 min eyes open, 19 electrodes) was obtained from 96 healthy adult men before and after nasal spray administration. The transient formation of non-harmonic cross-frequency configurations between alpha and theta peak frequencies was significantly increased after OT nasal spray administration, indicating an effect of OT on reducing the intrinsic occurrence of spurious (noisy) background phase synchronizations during resting-state. As a group, the OT group also showed a significant parallel increase in high-frequency and decrease in low-frequency heart rate variability, confirming a homeostatic role of OT in balancing parasympathetic drive. Overall, non-harmonic cross-frequency configurations have been put forward to lay the ground for a healthy neural network allowing the opportunity for an efficient transition from resting state to activity. The observed effects of OT on cross-frequency dynamics are therefore interpreted to reflect a homeostatic role of OT in increasing the signal-to-noise properties of the intrinsic EEG neural frequency architecture, i.e., by precluding the occurrence of 'noisy', unwanted, spurious couplings among neural rhythms in the resting brain.
振荡神经节律的峰值频率的转变已被提出作为大脑中实现交叉频率耦合和去耦的主要机制。这一概念基于数学现实,即只有当神经振荡的峰值频率形成谐波 2:1 关系(例如,f=f/2)时,它们才能完全同步。另一方面,非谐波交叉频率关系(基于无理黄金比例 1.618:1)提供了最高的生理可能去同步状态(减少虚假、嘈杂、背景耦合的发生),因此预计将表征大脑的静息状态,在此状态下不会发生选择性信息处理。本研究旨在评估在α(8-14 Hz)和θ(4-8 Hz)频段的峰值频率之间的 1.6:1 非谐波和 2:1 谐波关系的短暂出现——分别促进振荡节律之间的去耦或耦合状态——是否受到鼻内给予单次剂量催产素(OT)或安慰剂的影响。为此,在鼻喷雾给药前后,从 96 名健康成年男性中获得了 5 分钟睁眼的连续静息状态脑电图(19 个电极)。在 OT 鼻喷雾给药后,α 和θ 峰值频率之间的非谐波交叉频率构型的短暂形成显著增加,表明 OT 可降低静息状态下虚假(嘈杂)背景相位同步的固有发生。作为一个整体,OT 组的高频心率变异性也显著增加,低频心率变异性降低,证实了 OT 在平衡副交感神经驱动方面的同源作用。总体而言,非谐波交叉频率构型的提出为健康神经网络奠定了基础,为从静息状态向活动状态的有效转变提供了机会。因此,OT 对交叉频率动态的观察效应被解释为反映了 OT 在增加内在 EEG 神经频率结构的信号噪声比方面的同源作用,即通过防止静息大脑中神经节律的“嘈杂”、不需要的、虚假耦合的发生。