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微型双光子显微镜揭示模拟失重期间后肢运动皮层神经元的动态变化

Dynamic Changes in Hindlimb Motor Cortex Neurons during Simulated Weightlessness Revealed by Miniature 2-Photon Microscopy.

作者信息

Fan Yuanyuan, Li Jianwei, Han Jiaying, Xing Wenjuan, Li Yuheng, Liu Zizhong, Zhong Guohui, Du Ruikai, Zhao Jianguo, Sun Weijia, Yuan Xinxin, Li Youyou, Yue Hao, Pan Junjie, Jin Xiaoyan, Wang Li, Ling Shukuan, Zhang Lifeng, Li Yingxian

机构信息

National Key Laboratory of Space Medicine, China Astronaut Research and Training Center, Beijing, China.

School of Life Sciences, Henan University, Kaifeng, China.

出版信息

Research (Wash D C). 2025 Sep 19;8:0877. doi: 10.34133/research.0877. eCollection 2025.

Abstract

Dysfunction of motor behavior during spaceflight is linked to alterations in neuronal activities. However, the longitudinal functional changes in the motor cortex triggered by simulated weightlessness remain ambiguous. In this study, we utilized a miniaturized 2-photon microscope to examine the dynamic shifts in neuronal activities within the hindlimb motor cortex during simulated weightlessness and its subsequent recovery period at the single-cell level. Our results demonstrated that simulated weightlessness led to a progressive decline in motor behavior during open-field and rotarod tasks, which was fully reversed after a 2-week recovery period. Single-cell analysis revealed that hindlimb motor neurons could be classified as activated, inhibited, or unchanged. During active locomotion in the open field, the activity of locomotion-activated neurons increased, while the activity of locomotion-inhibited neurons decreased, despite their numbers remaining constant. Conversely, during passive rotation on the rotarod test, the number of rotation-activated neurons decreased, while their activity increased, and the number of rotation-inhibited neurons increased along with their activity. These changes were largely restored after reloading. These findings elucidate motor dysfunction under simulated weightlessness and the heterogeneous changes in neuronal activities within the hindlimb motor cortex, offering valuable insights into understanding behavioral changes regulated by the motor cortex during spaceflight.

摘要

太空飞行期间运动行为功能障碍与神经元活动的改变有关。然而,模拟失重引发的运动皮层纵向功能变化仍不明确。在本研究中,我们利用小型化双光子显微镜在单细胞水平上研究模拟失重及其随后恢复期内后肢运动皮层内神经元活动的动态变化。我们的结果表明,模拟失重导致旷场和转棒试验期间运动行为逐渐下降,在2周恢复期后完全恢复。单细胞分析显示,后肢运动神经元可分为激活、抑制或无变化三类。在旷场主动运动期间,运动激活神经元的活动增加,而运动抑制神经元的活动减少,尽管它们的数量保持不变。相反,在转棒试验被动旋转期间,旋转激活神经元的数量减少,而其活动增加,旋转抑制神经元的数量及其活动均增加。重新加载后,这些变化在很大程度上得以恢复。这些发现阐明了模拟失重下的运动功能障碍以及后肢运动皮层内神经元活动的异质性变化,为理解太空飞行期间运动皮层调节的行为变化提供了有价值的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/033b/12446757/c8143600967f/research.0877.fig.001.jpg

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