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运动学习过程中皮质纹状体轴突终扣的重塑

Remodelling of corticostriatal axonal boutons during motor learning.

作者信息

Sheng Mengjun, Lu Di, Roth Richard H, Hwang Fuu-Jiun, Sheng Kaiwen, Ding Jun B

机构信息

Department of Neurosurgery, Stanford University School of Medicine, Stanford, CA, USA.

Aligning Science Across Parkinson's (ASAP) Collaborative Research Network, Chevy Chase, MD, USA.

出版信息

Nature. 2025 Jul 30. doi: 10.1038/s41586-025-09336-w.

Abstract

Motor skill learning induces long-lasting synaptic plasticity at dendritic spines and at the outputs of motor cortical neurons to the striatum. However, little is known about corticostriatal axon activity and structural plasticity during learning in the adult brain. Here, using longitudinal in vivo two-photon imaging, we tracked thousands of corticostriatal axonal boutons in the dorsolateral striatum of awake mice. We found that learning a new motor skill dynamically regulated these boutons. The activities of motor corticostriatal axonal boutons exhibited selectivity for rewarded movements (RM) and unrewarded movements (UM). Notably, boutons on the same axonal branches showed diverse responses during behaviour. Motor learning significantly increased the proportion of RM boutons and reduced the heterogeneity of bouton activities. Moreover, motor learning induced profound structural dynamism in boutons. By combining structural and functional imaging, we saw that newly formed axonal boutons were more likely to exhibit selectivity for RM and were stabilized during motor learning, whereas UM boutons were selectively eliminated. These findings reveal a novel form of plasticity in corticostriatal axons and show that motor learning drives dynamic bouton reorganization to support motor skill acquisition and execution.

摘要

运动技能学习可在树突棘以及运动皮层神经元至纹状体的输出部位诱导产生持久的突触可塑性。然而,对于成体大脑学习过程中皮质纹状体轴突的活动及结构可塑性,我们却知之甚少。在此,我们利用纵向体内双光子成像技术,在清醒小鼠的背外侧纹状体中追踪了数千个皮质纹状体轴突终扣。我们发现,学习一项新的运动技能可动态调节这些终扣。运动皮质纹状体轴突终扣的活动对奖赏性动作(RM)和非奖赏性动作(UM)表现出选择性。值得注意的是,同一轴突分支上的终扣在行为过程中表现出不同的反应。运动学习显著增加了RM终扣的比例,并降低了终扣活动的异质性。此外,运动学习在终扣中诱导了深刻的结构动态变化。通过结合结构和功能成像,我们发现新形成的轴突终扣更有可能对RM表现出选择性,并在运动学习过程中得到稳定,而UM终扣则被选择性消除。这些发现揭示了皮质纹状体轴突可塑性的一种新形式,并表明运动学习驱动动态终扣重组以支持运动技能的获得与执行。

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