Visual Neuroplasticity: Modulating Cortical Excitability with Flickering Light Stimulation.

IF 2.7 Q3 IMAGING SCIENCE & PHOTOGRAPHIC TECHNOLOGY
Francisco J Ávila
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引用次数: 0

Abstract

The balance between cortical excitation and inhibition (E/I balance) in the cerebral cortex is critical for cognitive processing and neuroplasticity. Modulation of this balance has been linked to a wide range of neuropsychiatric and neurodegenerative disorders. The human visual system has well-differentiated magnocellular (M) and parvocellular (P) pathways, which provide a useful model to study cortical excitability using non-invasive visual flicker stimulation. We present an Arduino-driven non-image forming system to deliver controlled flickering light stimuli at different frequencies and wavelengths. By triggering the critical flicker fusion (CFF) frequency, we attempt to modulate the M-pathway activity and attenuate P-pathway responses, in parallel with induced optical scattering. EEG recordings were used to monitor cortical excitability and oscillatory dynamics during visual stimulation. Visual stimulation in the CFF, combined with induced optical scattering, selectively enhanced magnocellular activity and suppressed parvocellular input. EEG analysis showed a modulation of cortical oscillations, especially in the high frequency beta and gamma range. Our results support the hypothesis that visual flicker in the CFF, in addition to spatial degradation, initiates detectable neuroplasticity and regulates cortical excitation and inhibition. These findings suggest new avenues for therapeutic manipulation through visual pathways in diseases such as Alzheimer's disease, epilepsy, severe depression, and schizophrenia.

视觉神经可塑性:用闪烁光刺激调节皮质兴奋性。
大脑皮层兴奋和抑制之间的平衡(E/I平衡)对认知加工和神经可塑性至关重要。这种平衡的调节与广泛的神经精神和神经退行性疾病有关。人类视觉系统具有分化良好的巨细胞(M)和细小细胞(P)通路,这为利用无创视觉闪烁刺激研究皮层兴奋性提供了一个有用的模型。我们提出了一个arduino驱动的非图像形成系统,以提供不同频率和波长的受控闪烁光刺激。通过触发临界闪烁融合(CFF)频率,我们试图在诱导光散射的同时调节m途径的活性并减弱p途径的响应。脑电图记录用于监测视觉刺激时皮层的兴奋性和振荡动力学。CFF中的视觉刺激,结合诱导的光散射,选择性地增强了大细胞活性,抑制了微粒细胞输入。脑电图分析显示了皮层振荡的调制,特别是在高频β和γ范围。我们的研究结果支持了CFF中的视觉闪烁,以及空间退化,启动可检测的神经可塑性并调节皮层兴奋和抑制的假设。这些发现为阿尔茨海默病、癫痫、严重抑郁症和精神分裂症等疾病提供了通过视觉通路进行治疗操作的新途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Imaging
Journal of Imaging Medicine-Radiology, Nuclear Medicine and Imaging
CiteScore
5.90
自引率
6.20%
发文量
303
审稿时长
7 weeks
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