轴索刺激影响三个Argus II用户的单点感知的线性总和。

Yuchen Hou, Devyani Nanduri, Jacob Granley, James D Weiland, Michael Beyeler
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摘要

目的:视网膜植入物使用电刺激来引发闪光(“光气”)。由于通过的神经纤维束的偶然激活,单电极光气的形状已被证明随刺激幅度和频率以及刺激电极的视网膜位置而系统地变化。然而,这一知识尚未扩展到配对电极刺激。方法:我们回顾性分析了三名植入Argus II视网膜假体的盲人所绘制的4402张光气图。Phosphene形状(以面积、周长、长轴和短轴长度为特征;按受试者标准化)和感知到的Phosphene数量在整个试验中取平均值,并与相应的单电极参数相关。此外,磷的数量与刺激幅度和神经解剖学参数相关:电极视网膜(“高度”)和电极中央凹距离(“偏心率”),以及电极到(“轴突之间”)和沿轴突束(“沿轴突”)的距离。采用线性回归和偏相关分析进行统计分析。结果:简单回归显示,每个成对电极形状描述符可以通过两个相应的单个电极形状描述符的总和来预测(第001页)。多元回归显示,成对电极-磷形态主要通过刺激幅度、电极-视网膜距离和电极-中央凹距离来预测(见第05页)。有趣的是,诱发的光气数量随着轴突间距离的增加而增加(β=.162,p.05),但不随轴突间距离增加(p>0.05)。我们还发现,随着两个电极的轴突间距离的增加,感知到的磷的数量增加,这为视网膜前刺激的轴突图模型提供了进一步的证据。这些发现为越来越多的关于光气感知的文献做出了贡献,并对未来视网膜假体的设计具有重要意义。
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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Axonal stimulation affects the linear summation of single-point perception in three Argus II users.

Purpose: Retinal implants use electrical stimulation to elicit perceived flashes of light ("phosphenes"). Single-electrode phosphene shape has been shown to vary systematically with stimulus parameters and the retinal location of the stimulating electrode, due to incidental activation of passing nerve fiber bundles. However, this knowledge has yet to be extended to paired-electrode stimulation.

Methods: We retrospectively analyzed 3548 phosphene drawings made by three blind participants implanted with an Argus II Retinal Prosthesis. Phosphene shape (characterized by area, perimeter, major and minor axis length) and number of perceived phosphenes were averaged across trials and correlated with the corresponding single-electrode parameters. In addition, the number of phosphenes was correlated with stimulus amplitude and neuroanatomical parameters: electrode-retina and electrode-fovea distance as well as the electrode-electrode distance to ("between-axon") and along axon bundles ("along-axon"). Statistical analyses were conducted using linear regression and partial correlation analysis.

Results: Simple regression revealed that each paired-electrode shape descriptor could be predicted by the sum of the two corresponding single-electrode shape descriptors (p < .001). Multiple regression revealed that paired-electrode phosphene shape was primarily predicted by stimulus amplitude and electrode-fovea distance (p < .05). Interestingly, the number of elicited phosphenes tended to increase with between-axon distance (p < .05), but not with along-axon distance, in two out of three participants.

Conclusions: The shape of phosphenes elicited by paired-electrode stimulation was well predicted by the shape of their corresponding single-electrode phosphenes, suggesting that two-point perception can be expressed as the linear summation of single-point perception. The notable impact of the between-axon distance on the perceived number of phosphenes provides further evidence in support of the axon map model for epiretinal stimulation. These findings contribute to the growing literature on phosphene perception and have important implications for the design of future retinal prostheses.

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