Department of Cognitive Neuroscience, Faculty of Psychology and Neuroscience, Maastricht University, 6201BC Maastricht, The Netherlands; Maastricht Brain Imaging Centre, Faculty of Psychology and Neuroscience, Maastricht University, P.O. Box 616, 6200 MD Maastricht, The Netherlands.
Department of Cognitive Neuroscience, Faculty of Psychology and Neuroscience, Maastricht University, 6201BC Maastricht, The Netherlands; Institute of Neuroscience and Medicine (INM-1) Research Centre Jülich.
Neuroimage. 2017 Feb 1;146:561-574. doi: 10.1016/j.neuroimage.2016.10.044. Epub 2016 Oct 29.
Cognition is hypothesized to require the globally coordinated, functionally relevant integration of otherwise segregated information processing carried out by specialized brain regions. Studies of the macroscopic connectome as well as recent neuroimaging and neuromodeling research have suggested a densely connected collective of cortical hubs, termed the rich club, to provide a central workspace for such integration. In order for rich club regions to fulfill this role they must dispose of a dynamic mechanism by which they can actively shape networks of brain regions whose information processing needs to be integrated. A potential candidate for such a mechanism comes in the form of oscillations which might be employed to establish communication channels among relevant brain regions. We explore this possibility using an integrative approach combining whole-brain computational modeling with neuroimaging, wherein we investigate the local dynamics model brain regions need to exhibit in order to fit (dynamic) network behavior empirically observed for resting as well as a range of task states. We find that rich club regions largely exhibit oscillations during task performance but not during rest. Furthermore, oscillations exhibited by rich club regions can harmonize a set of asynchronous brain regions thus supporting functional coupling among them. These findings are in line with the hypothesis that the rich club can actively shape integration using oscillations.
认知被假设需要全局协调的、功能相关的整合,由专门的大脑区域进行的信息处理。对宏观连接组以及最近的神经影像学和神经建模研究的研究表明,一个密集连接的皮质中枢集合体,称为丰富俱乐部,为这种整合提供了一个中央工作区。为了使丰富俱乐部区域能够发挥这一作用,它们必须具备一种动态机制,通过这种机制,它们可以主动塑造需要整合信息处理的大脑区域的网络。这样的机制的一个潜在候选者是振荡,它可以用来在相关的大脑区域之间建立通信通道。我们使用一种整合的方法来探索这种可能性,这种方法结合了全脑计算建模和神经影像学,我们在其中研究了大脑区域需要表现出的局部动力学模型,以便适应休息以及一系列任务状态下经验观察到的(动态)网络行为。我们发现,丰富俱乐部区域在任务执行期间表现出大量的振荡,但在休息时没有。此外,丰富俱乐部区域表现出的振荡可以协调一组异步的大脑区域,从而支持它们之间的功能耦合。这些发现与丰富俱乐部可以使用振荡来主动塑造整合的假设是一致的。