1 Biological Psychology, Christian-Albrechts-University Kiel, Kiel, Germany.
2 Department of Psychiatry and Psychotherapy, St. Hedwig Hospital, Charité-Universitätsmedizin Berlin, Berlin, Germany.
Neuroscientist. 2018 Dec;24(6):609-626. doi: 10.1177/1073858418755352. Epub 2018 Feb 9.
At any given moment, we receive input through our different sensory systems, and this information needs to be processed and integrated. Multisensory processing requires the coordinated activity of distinct cortical areas. Key mechanisms implicated in these processes include local neural oscillations and functional connectivity between distant cortical areas. Evidence is now emerging that neural oscillations in distinct frequency bands reflect different mechanisms of multisensory processing. Moreover, studies suggest that aberrant neural oscillations contribute to multisensory processing deficits in clinical populations, such as schizophrenia. In this article, we review recent literature on the neural mechanisms underlying multisensory processing, focusing on neural oscillations. We derive a framework that summarizes findings on (1) stimulus-driven multisensory processing, (2) the influence of top-down information on multisensory processing, and (3) the role of predictions for the formation of multisensory perception. We propose that different frequency band oscillations subserve complementary mechanisms of multisensory processing. These processes can act in parallel and are essential for multisensory processing.
在任何给定的时刻,我们通过不同的感觉系统接收输入,这些信息需要被处理和整合。多感觉处理需要不同皮质区域的协调活动。这些过程中涉及的关键机制包括局部神经振荡和远距离皮质区域之间的功能连接。现在有证据表明,不同频率带的神经振荡反映了多感觉处理的不同机制。此外,研究表明,神经振荡异常导致精神分裂症等临床人群的多感觉处理缺陷。在本文中,我们回顾了多感觉处理的神经机制的最新文献,重点是神经振荡。我们得出了一个框架,总结了(1)刺激驱动的多感觉处理,(2)自上而下信息对多感觉处理的影响,以及(3)预测在多感觉感知形成中的作用。我们提出,不同频率带的振荡支持多感觉处理的互补机制。这些过程可以并行运作,对多感觉处理至关重要。