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海马体涟漪可预测人类短暂休息期间的运动学习。

Hippocampal ripples predict motor learning during brief rest breaks in humans.

作者信息

Sjøgård Martin, Baxter Bryan, Mylonas Dimitrios, Thompson Megan, Kwok Kristi, Driscoll Bailey, Tolosa Anabella, Shi Wen, Stickgold Robert, Vangel Mark, Chu Catherine J, Manoach Dara S

机构信息

Department of Psychiatry, Massachusetts General Hospital, Harvard Medical School, Boston, MA, USA.

Athinoula A. Martinos Center for Biomedical Imaging, Massachusetts General Hospital and Harvard Medical School, Charlestown, MA, USA.

出版信息

Nat Commun. 2025 Jul 2;16(1):6089. doi: 10.1038/s41467-025-61136-y.

Abstract

Critical aspects of motor learning and memory happen offline, during both wake and sleep. When healthy young people learn a motor sequence task, most of their performance improvement happens not while typing, but offline, during interleaved rest breaks. In contrast, the performance of patients with dense amnesia due to hippocampal damage actually gets worse over the rest breaks and improves while typing. These findings indicate that an intact hippocampus is necessary for offline motor learning during wake, but do not specify its mechanism. Here, we studied epilepsy patients (n = 17) undergoing direct intracranial electroencephalographic monitoring of the hippocampus as they learned the same motor sequence task. Like healthy young people, they show greater speed gains across rest breaks than while typing. They also show higher hippocampal ripple rates during these rest breaks that predict offline gains in speed. This suggests that motor learning during brief rest breaks during wake is mediated by hippocampal ripples. These results expand our understanding of the role of hippocampal ripples beyond declarative memory to include enhancing motor procedural memory.

摘要

运动学习和记忆的关键方面发生在离线状态,即在清醒和睡眠期间。当健康的年轻人学习一项运动序列任务时,他们的大部分表现提升并非在打字时发生,而是在离线状态,即在穿插的休息期间。相比之下,因海马体损伤而患有严重失忆症的患者,其表现实际上在休息期间会变差,而在打字时会有所改善。这些发现表明,完整的海马体对于清醒时的离线运动学习是必要的,但并未明确其机制。在此,我们研究了17名接受海马体直接颅内脑电图监测的癫痫患者,他们学习相同的运动序列任务。与健康的年轻人一样,他们在休息期间比打字时表现出更大的速度提升。他们在这些休息期间海马体涟漪频率也更高,这预示着离线状态下速度会提高。这表明清醒时短暂休息期间的运动学习是由海马体涟漪介导的。这些结果扩展了我们对海马体涟漪作用的理解,其作用不仅限于陈述性记忆,还包括增强运动程序记忆。

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