Spatially Localized Visual Perception Estimation by Means of Prosthetic Vision Simulation.

IF 2.7 Q3 IMAGING SCIENCE & PHOTOGRAPHIC TECHNOLOGY Journal of Imaging Pub Date : 2024-11-18 DOI:10.3390/jimaging10110294
Diego Luján Villarreal, Wolfgang Krautschneider
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Abstract

Retinal prosthetic devices aim to repair some vision in visually impaired patients by electrically stimulating neural cells in the visual system. Although there have been several notable advancements in the creation of electrically stimulated small dot-like perceptions, a deeper comprehension of the physical properties of phosphenes is still necessary. This study analyzes the influence of two independent electrode array topologies to achieve single-localized stimulation while the retina is electrically stimulated: a two-dimensional (2D) hexagon-shaped array reported in clinical studies and a patented three-dimensional (3D) linear electrode carrier. For both, cell stimulation is verified in COMSOL Multiphysics by developing a lifelike 3D computational model that includes the relevant retinal interface elements and dynamics of the voltage-gated ionic channels. The evoked percepts previously described in clinical studies using the 2D array are strongly associated with our simulation-based findings, allowing for the development of analytical models of the evoked percepts. Moreover, our findings identify differences between visual sensations induced by the arrays. The 2D array showed drawbacks during stimulation; similarly, the state-of-the-art 2D visual prostheses provide only dot-like visual sensations in close proximity to the electrode. The 3D design could offer a technique for improving cell selectivity because it requires low-intensity threshold activation which results in volumes of stimulation similar to the volume surrounded by a solitary RGC. Our research establishes a proof-of-concept technique for determining the utility of the 3D electrode array for selectively activating individual RGCs at the highest density via small-sized electrodes while maintaining electrochemical safety.

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通过假肢视觉模拟进行空间定位视觉感知估算
视网膜修复装置旨在通过电刺激视觉系统中的神经细胞,修复视力受损患者的部分视力。尽管在创造电刺激小点样感知方面取得了一些显著进展,但仍有必要深入了解幻视的物理特性。本研究分析了两种独立的电极阵列拓扑结构对在电刺激视网膜时实现单定位刺激的影响:一种是临床研究中报道的二维(2D)六角形阵列,另一种是获得专利的三维(3D)线性电极载体。通过开发逼真的三维计算模型,包括相关视网膜界面元素和电压门控离子通道的动态,在 COMSOL Multiphysics 中验证了这两种方法对细胞的刺激。之前在临床研究中使用二维阵列描述的诱发知觉与我们基于仿真的研究结果密切相关,从而可以开发出诱发知觉的分析模型。此外,我们的研究结果还发现了阵列诱发的视觉感受之间的差异。二维阵列在刺激过程中显示出缺点;同样,最先进的二维视觉义肢只能在靠近电极的地方提供点状视觉感受。三维设计可以提供一种提高细胞选择性的技术,因为它需要低强度的阈值激活,从而产生与单个 RGC 周围体积相似的刺激体积。我们的研究建立了一种概念验证技术,用于确定三维电极阵列的实用性,通过小型电极以最高密度选择性激活单个 RGC,同时保持电化学安全性。
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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
期刊最新文献
AQSA-Algorithm for Automatic Quantification of Spheres Derived from Cancer Cells in Microfluidic Devices. Editorial on the Special Issue "Fluorescence Imaging and Analysis of Cellular Systems". Spatially Localized Visual Perception Estimation by Means of Prosthetic Vision Simulation. MOTH: Memory-Efficient On-the-Fly Tiling of Histological Image Annotations Using QuPath. Anatomical Characteristics of Cervicomedullary Compression on MRI Scans in Children with Achondroplasia.
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