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定向运动-听觉脑电图连接受音乐节奏调节。

Directed Motor-Auditory EEG Connectivity Is Modulated by Music Tempo.

作者信息

Nicolaou Nicoletta, Malik Asad, Daly Ian, Weaver James, Hwang Faustina, Kirke Alexis, Roesch Etienne B, Williams Duncan, Miranda Eduardo R, Nasuto Slawomir J

机构信息

Brain Embodiment Laboratory, Biomedical Engineering Section, School of Biological Sciences, University of Reading, Reading, United Kingdom.

Department of Electrical and Electronic Engineering, Imperial College London, London, United Kingdom.

出版信息

Front Hum Neurosci. 2017 Oct 18;11:502. doi: 10.3389/fnhum.2017.00502. eCollection 2017.

DOI:10.3389/fnhum.2017.00502
PMID:29093672
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5651276/
Abstract

Beat perception is fundamental to how we experience music, and yet the mechanism behind this spontaneous building of the internal beat representation is largely unknown. Existing findings support links between the tempo (speed) of the beat and enhancement of electroencephalogram (EEG) activity at tempo-related frequencies, but there are no studies looking at how tempo may affect the underlying long-range interactions between EEG activity at different electrodes. The present study investigates these long-range interactions using EEG activity recorded from 21 volunteers listening to music stimuli played at 4 different tempi (50, 100, 150 and 200 beats per minute). The music stimuli consisted of piano excerpts designed to convey the emotion of "peacefulness". Noise stimuli with an identical acoustic content to the music excerpts were also presented for comparison purposes. The brain activity interactions were characterized with the imaginary part of coherence (iCOH) in the frequency range 1.5-18 Hz (δ, θ, α and lower β) between all pairs of EEG electrodes for the four tempi and the music/noise conditions, as well as a baseline resting state (RS) condition obtained at the start of the experimental task. Our findings can be summarized as follows: (a) there was an ongoing long-range interaction in the RS engaging fronto-posterior areas; (b) this interaction was maintained in both music and noise, but its strength and directionality were modulated as a result of acoustic stimulation; (c) the topological patterns of iCOH were similar for music, noise and RS, however statistically significant differences in strength and direction of iCOH were identified; and (d) tempo had an effect on the direction and strength of motor-auditory interactions. Our findings are in line with existing literature and illustrate a part of the mechanism by which musical stimuli with different tempi can entrain changes in cortical activity.

摘要

节拍感知是我们体验音乐的基础,然而这种内部节拍表征的自发构建背后的机制在很大程度上仍不为人所知。现有研究结果支持节拍的节奏(速度)与脑电图(EEG)在与节奏相关频率上的活动增强之间存在联系,但尚无研究探讨节奏如何影响不同电极处EEG活动之间潜在的长程相互作用。本研究使用从21名志愿者身上记录的EEG活动来调查这些长程相互作用,这些志愿者聆听以4种不同节奏(每分钟50、100、150和200拍)播放的音乐刺激。音乐刺激由旨在传达“宁静”情绪的钢琴片段组成。为了进行比较,还呈现了与音乐片段具有相同声学内容的噪声刺激。通过计算四种节奏以及音乐/噪声条件下,所有EEG电极对之间在1.5 - 18 Hz频率范围(δ、θ、α和较低β频段)内相干性的虚部(iCOH)来表征大脑活动的相互作用,同时还包括在实验任务开始时获得的基线静息状态(RS)条件。我们的研究结果可总结如下:(a)在静息状态下,额-后区域存在持续的长程相互作用;(b)这种相互作用在音乐和噪声中均得以维持,但由于声学刺激,其强度和方向性受到调制;(c)iCOH的拓扑模式在音乐、噪声和静息状态下相似,然而在iCOH的强度和方向上发现了具有统计学意义的差异;(d)节奏对运动-听觉相互作用的方向和强度有影响。我们的研究结果与现有文献一致,并阐明了不同节奏的音乐刺激能够引发皮层活动变化的部分机制。

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