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人类认知涉及神经活动和神经调质系统的动态整合。

Human cognition involves the dynamic integration of neural activity and neuromodulatory systems.

机构信息

Brain and Mind Center, The University of Sydney, Sydney, New South Wales, Australia.

QIMR Berghofer, Brisbane, Queensland, Australia.

出版信息

Nat Neurosci. 2019 Feb;22(2):289-296. doi: 10.1038/s41593-018-0312-0. Epub 2019 Jan 21.

Abstract

The human brain integrates diverse cognitive processes into a coherent whole, shifting fluidly as a function of changing environmental demands. Despite recent progress, the neurobiological mechanisms responsible for this dynamic system-level integration remain poorly understood. Here we investigated the spatial, dynamic, and molecular signatures of system-wide neural activity across a range of cognitive tasks. We found that neuronal activity converged onto a low-dimensional manifold that facilitates the execution of diverse task states. Flow within this attractor space was associated with dissociable cognitive functions, unique patterns of network-level topology, and individual differences in fluid intelligence. The axes of the low-dimensional neurocognitive architecture aligned with regional differences in the density of neuromodulatory receptors, which in turn relate to distinct signatures of network controllability estimated from the structural connectome. These results advance our understanding of functional brain organization by emphasizing the interface between neural activity, neuromodulatory systems, and cognitive function.

摘要

人类大脑将各种认知过程整合到一个连贯的整体中,随着环境需求的变化而流畅地转换。尽管最近取得了进展,但负责这一动态系统级整合的神经生物学机制仍知之甚少。在这里,我们研究了一系列认知任务中全脑神经活动的空间、动态和分子特征。我们发现神经元活动收敛到一个低维流形上,从而促进了各种任务状态的执行。在这个吸引子空间中的流动与可分离的认知功能、网络级拓扑的独特模式以及流体智力的个体差异有关。这个低维神经认知结构的轴与神经调质受体密度的区域差异相吻合,而后者又与从结构连接组估计的网络可控性的不同特征有关。这些结果通过强调神经活动、神经调质系统和认知功能之间的接口,推进了我们对功能大脑组织的理解。

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