Dept. of Biomedical Engineering, University of Utah, 36 S. Wasatch Drive, Salt Lake City, UT 84112, USA; Dept. of Ophthalmology and Visual Sciences, University of Utah, 65 Mario Capecchi Drive, Salt Lake City, UT 84132, USA.
Dept. of Ophthalmology and Visual Sciences, University of Utah, 65 Mario Capecchi Drive, Salt Lake City, UT 84132, USA.
Prog Neurobiol. 2023 Sep;228:102491. doi: 10.1016/j.pneurobio.2023.102491. Epub 2023 Jun 29.
The interactions between prefrontal cortex and other areas during working memory have been studied for decades. Here we outline a conceptual framework describing interactions between these areas during working memory, and review evidence for key elements of this model. We specifically suggest that a top-down signal sent from prefrontal to sensory areas drives oscillations in these areas. Spike timing within sensory areas becomes locked to these working-memory-driven oscillations, and the phase of spiking conveys information about the representation available within these areas. Downstream areas receiving these phase-locked spikes from sensory areas can recover this information via a combination of coherent oscillations and gating of input efficacy based on the phase of their local oscillations. Although the conceptual framework is based on prefrontal interactions with sensory areas during working memory, we also discuss the broader implications of this framework for flexible communication between brain areas in general.
前额叶皮层与其他区域在工作记忆中的相互作用已经研究了几十年。在这里,我们概述了一个描述工作记忆中这些区域之间相互作用的概念框架,并回顾了该模型关键要素的证据。我们特别提出,从前额叶皮层到感觉区域的自上而下的信号驱动这些区域的振荡。感觉区域内的尖峰时间锁定到这些工作记忆驱动的振荡,并且尖峰的相位传递关于这些区域内可用的表示的信息。接收来自感觉区域的这些相位锁定尖峰的下游区域可以通过基于局部振荡相位的相干振荡和输入效能的门控来恢复此信息。虽然概念框架基于工作记忆期间前额叶皮层与感觉区域的相互作用,但我们还讨论了该框架对大脑区域之间一般灵活通信的更广泛影响。