Whole-brain computation of cognitive versus acoustic errors in music: A mismatch negativity study

Q4 Neuroscience Neuroimage. Reports Pub Date : 2022-12-01 DOI:10.1016/j.ynirp.2022.100145
L. Bonetti , F. Carlomagno , M. Kliuchko , B.P. Gold , S. Palva , N.T. Haumann , M. Tervaniemi , M. Huotilainen , P. Vuust , E. Brattico
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Abstract

Previous studies have evidenced how the local prediction of physical stimulus features may affect the neural processing of incoming stimuli. Less known are the effects of cognitive priors on predictive processes, and how the brain computes local versus cognitive predictions and their errors. Here, we determined the differential brain mechanisms underlying prediction errors related to high-level, cognitive priors for melody (rhythm, contour) versus low-level, local acoustic priors (tuning, timbre). We measured with magnetoencephalography the mismatch negativity (MMN) prediction error signal in 104 adults having varying levels of musical expertise. We discovered that the brain regions involved in early predictive processes for local priors were primary and secondary auditory cortex and insula, whereas cognitive brain regions such as cingulate and orbitofrontal cortices were recruited for early melodic errors in cognitive priors. The involvement of higher-level brain regions for computing early cognitive errors was enhanced in musicians, especially in cingulate cortex, inferior frontal gyrus, and supplementary motor area. Overall, the findings expand knowledge on whole-brain mechanisms of predictive processing and the related MMN generators, previously mainly confined to the auditory cortex, to a frontal network that strictly depends on the type of priors that are to be computed by the brain.

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音乐中认知错误与声学错误的全脑计算:一项错配负性研究
先前的研究已经证明了物理刺激特征的局部预测如何影响传入刺激的神经处理。不太为人所知的是认知先验对预测过程的影响,以及大脑如何计算局部预测与认知预测及其错误。在这里,我们确定了与旋律(节奏、轮廓)的高级认知先验与低级局部声学先验(调谐、音色)相关的预测错误的不同大脑机制。我们用脑磁图测量了104名不同音乐专业水平的成年人的失配负性预测误差信号。我们发现,参与局部先验的早期预测过程的大脑区域是初级、次级听觉皮层和脑岛,而认知脑区域,如扣带皮层和眶额皮质,则参与认知先验的早期旋律错误。音乐家参与计算早期认知错误的高级大脑区域,特别是扣带皮层、额下回和辅助运动区。总的来说,这些发现扩大了对预测处理和相关MMN产生的全脑机制的认识,以前主要局限于听觉皮层,到一个严格依赖于大脑计算的先验类型的额叶网络。
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来源期刊
Neuroimage. Reports
Neuroimage. Reports Neuroscience (General)
CiteScore
1.90
自引率
0.00%
发文量
0
审稿时长
87 days
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