Ara Alberto, Provias Vasiliki, Sitek Kevin, Coffey Emily B J, Zatorre Robert J
Montreal Neurological Institute, McGill University, 3801 University Street, Montreal, QC H3A 2B4, Canada.
International Laboratory for Brain, Music and Sound Research (BRAMS), 90 Vincent-d'Indy Avenue, Outremont, QC H2V 2S9, Canada.
Cereb Cortex. 2024 Aug 1;34(8). doi: 10.1093/cercor/bhae316.
Perception integrates both sensory inputs and internal models of the environment. In the auditory domain, predictions play a critical role because of the temporal nature of sounds. However, the precise contribution of cortical and subcortical structures in these processes and their interaction remain unclear. It is also unclear whether these brain interactions are specific to abstract rules or if they also underlie the predictive coding of local features. We used high-field 7T functional magnetic resonance imaging to investigate interactions between cortical and subcortical areas during auditory predictive processing. Volunteers listened to tone sequences in an oddball paradigm where the predictability of the deviant was manipulated. Perturbations in periodicity were also introduced to test the specificity of the response. Results indicate that both cortical and subcortical auditory structures encode high-order predictive dynamics, with the effect of predictability being strongest in the auditory cortex. These predictive dynamics were best explained by modeling a top-down information flow, in contrast to unpredicted responses. No error signals were observed to deviations of periodicity, suggesting that these responses are specific to abstract rule violations. Our results support the idea that the high-order predictive dynamics observed in subcortical areas propagate from the auditory cortex.
感知整合了感官输入和环境的内部模型。在听觉领域,由于声音的时间特性,预测起着关键作用。然而,皮质和皮质下结构在这些过程中的精确贡献及其相互作用仍不清楚。这些大脑相互作用是特定于抽象规则,还是也构成局部特征的预测编码基础,也不清楚。我们使用高场7T功能磁共振成像来研究听觉预测处理过程中皮质和皮质下区域之间的相互作用。志愿者在一个异常刺激范式中听音调序列,其中异常刺激的可预测性被操纵。还引入了周期性扰动来测试反应的特异性。结果表明,皮质和皮质下听觉结构都编码高阶预测动态,可预测性的影响在听觉皮层中最强。与未预测的反应相比,通过对自上而下的信息流进行建模可以最好地解释这些预测动态。未观察到对周期性偏差的错误信号,表明这些反应特定于抽象规则违反。我们的结果支持这样一种观点,即皮质下区域观察到的高阶预测动态是从听觉皮层传播而来的。