Ou Shaocong, Hori Kouta, Muangkram Yuttamol, Himeno Yukiko, Tachibanaki Shuji, Amano Akira
Graduate School of Life Sciences, Ritsumeikan University, Kusatsu City, Shiga, Japan.
Division of Biology, Department of Natural Science, The Jikei University School of Medicine, Tokyo, Japan.
Sci Rep. 2025 Apr 2;15(1):11211. doi: 10.1038/s41598-025-95998-5.
This study presents a one-dimensional bidomain cable model for analyzing the relationship between rod membrane currents and rod electroretinogram (ERG) waveform components. The model incorporates the detailed structural and electrophysiological properties of rod photoreceptors by assuming the distribution of various ion currents. Simulation results indicate that the outer segment current (I) primarily influences the photoreceptor component of ERG in low-intensity light, while the transient potential notch shape called "nose," observed under high-intensity light stimulation, is mainly attributed to the I current in the inner segment. In addition, capacitive currents in the outer segment play a crucial role in maintaining extracellular current loops when I is inactive. These findings highlight that currents other than I, such as I and capacitive currents, contribute significantly to the ERG waveform, particularly under high-intensity light, as theoretically suggested by Robson et al. The model successfully reproduced the experimentally measured rod ERG waveforms and their local components, providing a foundational platform for further investigation of ERG mechanisms. This enhanced understanding could lead to improved clinical applications of ERG in the diagnosis and assessment of retinal conditions. Future work will focus on refining the ion channel distribution, incorporating additional transport mechanisms, and validating the model using a broader range of experimental data to better replicate the complex electrophysiological phenomena of rod photoreceptor cells.
本研究提出了一种一维双域电缆模型,用于分析视杆细胞膜电流与视杆细胞视网膜电图(ERG)波形成分之间的关系。该模型通过假设各种离子电流的分布,纳入了视杆光感受器的详细结构和电生理特性。模拟结果表明,在外段电流(I)主要在低强度光下影响ERG的光感受器成分,而在高强度光刺激下观察到的称为“鼻”的瞬态电位缺口形状主要归因于内段的I电流。此外,当I不活跃时,外段的电容电流在维持细胞外电流回路中起着关键作用。这些发现突出表明,除I之外的电流,如I和电容电流,对ERG波形有显著贡献,特别是在高强度光下,正如罗布森等人从理论上所指出的那样。该模型成功地再现了实验测量的视杆细胞ERG波形及其局部成分,为进一步研究ERG机制提供了一个基础平台。这种深入的理解可能会改善ERG在视网膜疾病诊断和评估中的临床应用。未来的工作将集中在优化离子通道分布、纳入额外的转运机制,以及使用更广泛的实验数据验证模型,以更好地复制视杆光感受器细胞的复杂电生理现象。