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首页> 外文期刊>Scientific reports. >Electroencephalography reflects the activity of sub-cortical brain regions during approach-withdrawal behaviour while listening to music
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Electroencephalography reflects the activity of sub-cortical brain regions during approach-withdrawal behaviour while listening to music

机译:脑电图反映了在接近撤离行为期间亚皮质脑区域的活性,同时收听音乐

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The ability of music to evoke activity changes in the core brain structures that underlie the experience of emotion suggests that it has the potential to be used in therapies for emotion disorders. A large volume of research has identified a network of sub-cortical brain regions underlying music-induced emotions. Additionally, separate evidence from electroencephalography (EEG) studies suggests that prefrontal asymmetry in the EEG reflects the approach-withdrawal response to music-induced emotion. However, fMRI and EEG measure quite different brain processes and we do not have a detailed understanding of the functional relationships between them in relation to music-induced emotion. We employ a joint EEG - fMRI paradigm to explore how EEG-based neural correlates of the approach-withdrawal response to music reflect activity changes in the sub-cortical emotional response network. The neural correlates examined are asymmetry in the prefrontal EEG, and the degree of disorder in that asymmetry over time, as measured by entropy. Participants' EEG and fMRI were recorded simultaneously while the participants listened to music that had been specifically generated to target the elicitation of a wide range of affective states. While listening to this music, participants also continuously reported their felt affective states. Here we report on co-variations in the dynamics of these self-reports, the EEG, and the sub-cortical brain activity. We find that a set of sub-cortical brain regions in the emotional response network exhibits activity that significantly relates to prefrontal EEG asymmetry. Specifically, EEG in the pre-frontal cortex reflects not only cortical activity, but also changes in activity in the amygdala, posterior temporal cortex, and cerebellum. We also find that, while the magnitude of the asymmetry reflects activity in parts of the limbic and paralimbic systems, the entropy of that asymmetry reflects activity in parts of the autonomic response network such as the auditory cortex. This suggests that asymmetry magnitude reflects affective responses to music, while asymmetry entropy reflects autonomic responses to music. Thus, we demonstrate that it is possible to infer activity in the limbic and paralimbic systems from pre-frontal EEG asymmetry. These results show how EEG can be used to measure and monitor changes in the limbic and paralimbic systems. Specifically, they suggest that EEG asymmetry acts as an indicator of sub-cortical changes in activity induced by music. This shows that EEG may be used as a measure of the effectiveness of music therapy to evoke changes in activity in the sub-cortical emotion response network. This is also the first time that the activity of sub-cortical regions, normally considered "invisible" to EEG, has been shown to be characterisable directly from EEG dynamics measured during music listening.
机译:音乐唤起活动的能力在核心大脑结构中改变的核心大脑结构,使得情感的经验表明它具有在情感障碍的疗法中使用的可能性。大量的研究已经确定了音乐引起的情绪的潜在皮质脑区网络。此外,来自脑电图(EEG)研究的单独证据表明,EEG中的前额不对称反映了对音乐引起的情感的接近退出响应。然而,FMRI和EEG测量的大脑过程非常不同,我们没有详细了解与音乐引起的情感相关的功能关系。我们采用联合EEG - FMRI范式来探讨eEG的神经网络如何与音乐的接近撤出响应的关联反映子皮质情绪响应网络的活动变化。通过熵测量,检查了前额外脑电图的神经相关性在前额外脑电图中的不对称性,以及随着时间的推移随时间的紊乱程度。同时记录参与者的EEG和FMRI,同时参与者听到专门生成的音乐,以针对广泛的情感国家的诱因。同时倾听这种音乐,参与者也持续报告了他们的感受情绪状态。在这里,我们报告了这些自我报告,脑电图和亚皮质脑活动的动态的共同变化。我们发现,情绪反应网络中的一组亚皮质脑区域表现出显着涉及前额外EEG不对称的活动。具体地,前额外皮层中的脑电图不仅反映了皮质活性,而且还反映了杏仁菌,后颞皮质和小脑的活性变化。我们还发现,虽然不对称的幅度反映了肢体和普拉维尔床系统的部分中的活动,但不对称的熵反映了自主响应网络的部分的活动,例如听觉皮质。这表明不对称程度反映对音乐的情感响应,而不对称熵反映了对音乐的自主反应。因此,我们证明可以从前前EEG不对称中推断肢体和普拉维床系统中的活性。这些结果表明EEG如何用于测量和监测肢体和普拉维尔床系统的变化。具体而言,他们表明EEG不对称性充当音乐引起的活动的子皮质变化的指标。这表明EEG可以用作音乐治疗的有效性的衡量标准,以唤起子皮质情绪响应网络中活动的变化。这也是第一次第一次,通常被认为是“看不见的”到脑电图的,已经显示出直接从音乐收听期间测量的脑电图动力学的特征。

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