Digital and Cognitive Musicology Lab, École polytechnique fédérale de Lausanne, Lausanne, Vaud, 1015, Switzerland
MARCS Institute for Brain, Behaviour and Development, Western Sydney University, Milperra, New South Wales, 2214, Australia.
eNeuro. 2020 Jul 31;7(4). doi: 10.1523/ENEURO.0413-19.2020. Print 2020 Jul/Aug.
Rhythmic auditory stimuli are known to elicit matching activity patterns in neural populations. Furthermore, recent research has established the particular importance of high-gamma brain activity in auditory processing by showing its involvement in auditory phrase segmentation and envelope tracking. Here, we use electrocorticographic (ECoG) recordings from eight human listeners to see whether periodicities in high-gamma activity track the periodicities in the envelope of musical rhythms during rhythm perception and imagination. Rhythm imagination was elicited by instructing participants to imagine the rhythm to continue during pauses of several repetitions. To identify electrodes whose periodicities in high-gamma activity track the periodicities in the musical rhythms, we compute the (ACCs) of both the musical rhythms and the neural signals. A condition in which participants listened to white noise was used to establish a baseline. High-gamma autocorrelations in auditory areas in the superior temporal gyrus and in frontal areas on both hemispheres significantly matched the autocorrelations of the musical rhythms. Overall, numerous significant electrodes are observed on the right hemisphere. Of particular interest is a large cluster of electrodes in the right prefrontal cortex that is active during both rhythm perception and imagination. This indicates conscious processing of the rhythms' structure as opposed to mere auditory phenomena. The autocorrelation approach clearly highlights that high-gamma activity measured from cortical electrodes tracks both attended and imagined rhythms.
节律性听觉刺激已知能引起神经群体中匹配的活动模式。此外,最近的研究已经确定了高伽马脑活动在听觉处理中的特殊重要性,表明其参与了听觉短语分割和包络跟踪。在这里,我们使用来自八名人类听众的脑电描记术 (ECoG) 记录,观察在节奏感知和想象过程中,高伽马活动的周期性是否与音乐节奏的包络的周期性相吻合。通过指示参与者在多次重复的停顿期间想象节奏继续,来引发节奏想象。为了确定高伽马活动的周期性与音乐节奏的周期性相吻合的电极,我们计算了音乐节奏和神经信号的自相关 (ACCs)。参与者听白噪声的条件被用来建立基线。在颞上回的听觉区域和双侧额区的高伽马自相关与音乐节奏的自相关显著匹配。总的来说,在右半球观察到许多显著的电极。特别值得注意的是,在右前额皮质中有一个大的电极簇,在感知和想象节奏时都很活跃。这表明对节奏结构的有意识处理,而不是单纯的听觉现象。自相关方法清楚地表明,从皮质电极测量的高伽马活动跟踪了注意到的和想象的节奏。