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斜坡刺激可分离顶叶和前额叶皮质中的运动序列和认知序列。

Ramping dissociates motor and cognitive sequences in the parietal and prefrontal cortices.

作者信息

Doyle Hannah, Yewbrey Rhys, Kornysheva Katja, Desrochers Theresa M

机构信息

Department of Neuroscience, Brown University.

Centre for Human Brain Health, School of Psychology, University of Birmingham.

出版信息

bioRxiv. 2025 Jan 28:2024.10.09.617499. doi: 10.1101/2024.10.09.617499.

DOI:10.1101/2024.10.09.617499
PMID:39416155
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11482992/
Abstract

Humans complete different types of sequences as a part of everyday life. These sequences can be divided into two important categories: those that are abstract, in which the steps unfold according to a rule at super-second to minute time scale, and those that are motor, defined solely by individual movements and their order which unfold at the sub-second to second timescale. For example, the sequence of making spaghetti consists of abstract tasks (preparing the sauce and cooking the noodles) and nested motor actions (stir pasta water). Previous work shows neural activity increases (ramps) in the rostrolateral prefrontal (RLPFC) during abstract sequence execution (Desrochers et al., 2015, 2019). During motor sequence production, activity occurs in regions of the prefrontal cortex (Yewbrey et al., 2023). However, it remains unknown if ramping is a signature of motor sequence production as well or solely an attribute of abstract sequence monitoring and execution. We tested the hypothesis that significant ramping activity occurs during motor sequence production in the RLPFC. Contrary to our hypothesis, we did not observe significant ramping activity in the RLPFC during motor sequence production, but we found significant ramping activity in bilateral inferior parietal cortex, in regions distinct from those observed during an abstract sequence task. Our results suggest different prefrontal-parietal circuitry may underlie abstract versus motor sequence execution.

摘要

人类在日常生活中会完成不同类型的序列。这些序列可分为两个重要类别:一类是抽象序列,其步骤在超秒到分钟的时间尺度上按照规则展开;另一类是运动序列,仅由个体动作及其顺序定义,在亚秒到秒的时间尺度上展开。例如,制作意大利面的序列包括抽象任务(准备酱汁和煮面条)和嵌套的运动动作(搅拌面汤)。先前的研究表明,在执行抽象序列时, Rostrolateral前额叶(RLPFC)的神经活动会增加(斜坡状变化)(Desrochers等人,2015年,2019年)。在产生运动序列时,前额叶皮层区域会出现活动(Yewbrey等人,2023年)。然而,尚不清楚斜坡状变化是否也是运动序列产生的特征,还是仅仅是抽象序列监测和执行的一个属性。我们测试了这样一个假设,即在运动序列产生过程中,RLPFC会出现显著的斜坡状活动。与我们的假设相反,我们在运动序列产生过程中未观察到RLPFC有显著的斜坡状活动,但我们在双侧下顶叶皮层中发现了显著的斜坡状活动,这些区域与在抽象序列任务中观察到的区域不同。我们的结果表明,不同的前额叶 - 顶叶神经回路可能是抽象序列与运动序列执行的基础。

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本文引用的文献

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New functional dissociations between prefrontal and parietal cortex during task switching: A combined fMRI and TMS study.前额叶和顶叶皮层在任务切换过程中的新功能分离:一项 fMRI 和 TMS 联合研究。
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Delay of gratification dissociates cognitive control and valuation brain regions in healthy young adults.
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10
Sequential Control Underlies Robust Ramping Dynamics in the Rostrolateral Prefrontal Cortex.序贯控制是延髓外侧前额叶皮质稳健斜坡动力学的基础。
J Neurosci. 2019 Feb 20;39(8):1471-1483. doi: 10.1523/JNEUROSCI.1060-18.2018. Epub 2018 Dec 21.