猕猴额叶皮层对序列工作记忆的灵活控制

IF 14.7 1区 医学 Q1 NEUROSCIENCES Neuron Pub Date : 2024-10-23 Epub Date: 2024-08-22 DOI:10.1016/j.neuron.2024.07.024
Jingwen Chen, Cong Zhang, Peiyao Hu, Bin Min, Liping Wang
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引用次数: 0

摘要

要记住一个序列,就必须将每个项目与其等级顺序序列化。大脑如何在序列工作记忆(SWM)中控制给定输入以绑定其相关顺序仍是一个未知数。在这里,我们通过对执行正向和反向 SWM 任务的猕猴额叶皮层进行电生理记录,研究了 SWM 控制背后的神经表征。在同一额叶回路中,我们发现了用于感官和记忆信息的独立且可概括的低维子空间,SWM 控制反映在这些神经子空间的有组织动态中。每个等级的每个项目都依次进入一个共同的感觉子空间,并根据向前或向后的任务要求,灵活、及时地发送到等级选择性 SWM 子空间。这些 SWM 子空间中的神经活动忠实地预测了单次错误试验中回忆起的项目和顺序信息。因此,额叶皮层中具有良好协调动态的组成神经群编码支持对SWM的灵活控制。
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Flexible control of sequence working memory in the macaque frontal cortex.

To memorize a sequence, one must serially bind each item to its rank order. How the brain controls a given input to bind its associated order in sequence working memory (SWM) remains unexplored. Here, we investigated the neural representations underlying SWM control using electrophysiological recordings in the frontal cortex of macaque monkeys performing forward and backward SWM tasks. Separate and generalizable low-dimensional subspaces for sensory and memory information were found within the same frontal circuitry, and SWM control was reflected in these neural subspaces' organized dynamics. Each item at each rank was sequentially entered into a common sensory subspace and, depending on forward or backward task requirement, flexibly and timely sent into rank-selective SWM subspaces. Neural activity in these SWM subspaces faithfully predicted the recalled item and order information in single error trials. Thus, compositional neural population codes with well-orchestrated dynamics in frontal cortex support the flexible control of SWM.

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来源期刊
Neuron
Neuron 医学-神经科学
CiteScore
24.50
自引率
3.10%
发文量
382
审稿时长
1 months
期刊介绍: Established as a highly influential journal in neuroscience, Neuron is widely relied upon in the field. The editors adopt interdisciplinary strategies, integrating biophysical, cellular, developmental, and molecular approaches alongside a systems approach to sensory, motor, and higher-order cognitive functions. Serving as a premier intellectual forum, Neuron holds a prominent position in the entire neuroscience community.
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