非侵入性光闪烁刺激对成年小鼠初级视觉皮层功能特性的影响
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1)中国科学技术大学生命科学与医学部,合肥 230026;2)合肥微尺度物质科学国家研究中心,合肥 230026

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国家自然科学基金(32070990),安徽省教育厅高校自然科学基金(2022AH052326W)和合肥国家综合科学中心合肥脑计划资助项目。


Effects of Non-invasive Light Flicker on Functional Properties of Primary Visual Cortex in Adult Mice
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1)Division of Life Sciences and Medicine, University of Science and Technology of China, Hefei, Anhui 230026, China;2)Hefei National Laboratory for Physical Sciences at the Microscale, Hefei, Anhui 230026, China

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This work was supported by grants from The Natural Science Foundation of China (32070990), Natural Science Research in Colleges and Universities of Anhui Provincial Department of Education (2022AH052326) and Hefei Comprehensive National Science Center Hefei Brain Project.

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    摘要:

    目的 作为经典视觉通路的中枢门户,初级视觉皮层不仅负责视觉信息的编码处理,还与一些高级认知功能脑区存在着密切的神经环路连接。研究表明,40 Hz闪烁刺激可以诱导脑内产生gamma振荡,显著改善神经退行性疾病的学习和认知障碍。同时,自然界中也存在着部分光闪烁现象。初级视觉皮层作为视觉信息传入大脑的第一站中枢皮层,深入解析非侵入性闪烁光刺激对其信息处理的调控机制显得尤为关键。本研究系统探讨了非侵入性光闪烁刺激对成年小鼠V1神经元功能特性的影响,以期能够了解非侵入性光闪烁对脑功能的影响。方法 本研究通过给3组成年小鼠施加不同频率的闪烁刺激(20、40和60 Hz),利用在体多通道电生理技术探究了其对成年小鼠初级视觉皮层神经元感受野特性的影响。结果 实验结果表明,连续2个月不同频率的闪烁刺激使小鼠V1神经元的方位调谐能力增强,40 Hz和60 Hz的闪烁刺激还使神经元的对比敏感度得到改善,而20 Hz没有明显影响。通过进一步分析,发现3种频率都可以使神经元的反应变异性下降,信噪比上升,神经元之间的噪音相关性下降。结论 非侵入性的光闪烁刺激通过影响初级视觉皮层神经元的信息处理效率,改善了方位调谐能力和对比敏感度,为多种闪烁光如何影响视觉感知提供了新的实验证据,也为深入理解特定频率的闪烁光如何改善脑功能的机制提供了新的线索。

    Abstract:

    Objective As the central hub of the classical visual pathway, the primary visual cortex not only encodes and processes visual information but also establishes dense neural circuit connections with higher-order cognitive brain regions. Numerous studies have shown that 40 Hz flicker stimulation can induce gamma oscillations in the brain and significantly improve learning and cognitive impairments in patients with neurodegenerative diseases. Moreover, flickering light phenomena naturally occur in daily environments. Given that the primary visual cortex serves as the brain"s first cortical hub for receiving visual input, it is essential to comprehensively understand how non-invasive light flicker stimulation modulates its information processing mechanisms. This study systematically investigates the effects of non-invasive light flicker stimulation at different frequencies on the functional properties of neurons in the primary visual cortex of adult mice, aiming to uncover how such stimulation modulates this region and, consequently, affects overall brain function.Methods Three groups of adult mice (approximately 12 weeks old) were exposed to light flicker stimulation at frequencies of 20 Hz, 40 Hz, and 60 Hz, respectively, for a duration of two months. A control group was exposed to the same light intensity without flickering. Following the stimulation period, in vivo multi-channel electrophysiological recordings were conducted. During these recordings, anesthetized mice were presented with various types of moving sinusoidal light gratings to assess the effects of different flicker frequencies on the functional properties of neurons in the primary visual cortex.Results The experimental results demonstrate that two months of light flicker stimulation at 20 Hz, 40 Hz, and 60 Hz enhances the orientation tuning capabilities of neurons in the primary visual cortex. Specifically, 40 Hz and 60 Hz stimulation improved contrast sensitivity, whereas 20 Hz had no significant effect. Further analysis revealed that all three frequencies reduced neuronal response variability (as measured by the Fano Factor), increased the signal-to-noise ratio, and decreased noise correlation (rsc) between neurons.Conclusion Non-invasive light flicker stimulation enhances orientation tuning (e.g., orientation bandwidth) and contrast sensitivity (e.g., contrast threshold and C50) in neurons of the primary visual cortex. This enhancement is likely due to improved information processing efficiency, characterized by reduced neuronal variability and increased signal-to-noise ratio. These findings suggest that the primary visual cortex can achieve precise and efficient information encoding in complex lighting environments by selectively adapting to different flicker frequencies and optimizing receptive field properties. This study provides new experimental evidence on how various types of light flicker influence visual perception and offers insights into the mechanisms through which specific frequencies enhance brain function.

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李雪琪,周逸峰,徐光威.非侵入性光闪烁刺激对成年小鼠初级视觉皮层功能特性的影响[J].生物化学与生物物理进展,,():

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  • 收稿日期:2025-03-14
  • 最后修改日期:2025-06-09
  • 接受日期:2025-06-09
  • 在线发布日期: 2025-06-12
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