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离散吸引子动力学是额叶皮层持续活动的基础。

Discrete attractor dynamics underlies persistent activity in the frontal cortex.

机构信息

Janelia Research Campus, HHMI, Ashburn, VA, USA.

出版信息

Nature. 2019 Feb;566(7743):212-217. doi: 10.1038/s41586-019-0919-7. Epub 2019 Feb 6.

Abstract

Short-term memories link events separated in time, such as past sensation and future actions. Short-term memories are correlated with slow neural dynamics, including selective persistent activity, which can be maintained over seconds. In a delayed response task that requires short-term memory, neurons in the mouse anterior lateral motor cortex (ALM) show persistent activity that instructs future actions. To determine the principles that underlie this persistent activity, here we combined intracellular and extracellular electrophysiology with optogenetic perturbations and network modelling. We show that during the delay epoch, the activity of ALM neurons moved towards discrete end points that correspond to specific movement directions. These end points were robust to transient shifts in ALM activity caused by optogenetic perturbations. Perturbations occasionally switched the population dynamics to the other end point, followed by incorrect actions. Our results show that discrete attractor dynamics underlie short-term memory related to motor planning.

摘要

短期记忆将时间上分隔的事件联系起来,例如过去的感觉和未来的行动。短期记忆与缓慢的神经动力学相关,包括选择性持续活动,可以持续数秒。在需要短期记忆的延迟反应任务中,小鼠前外侧运动皮层 (ALM) 的神经元表现出持续的活动,指导未来的行动。为了确定这种持续活动的原理,我们在这里结合了细胞内和细胞外电生理学、光遗传学干扰和网络建模。我们表明,在延迟期间,ALM 神经元的活动向离散的终点移动,这些终点对应于特定的运动方向。这些终点对光遗传学干扰引起的 ALM 活动的短暂变化具有鲁棒性。干扰偶尔会将群体动力学切换到另一个终点,随后是错误的动作。我们的结果表明,离散吸引子动力学是运动规划相关的短期记忆的基础。

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