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穿透性电极的几何形状和插入位置对视网膜刺激的影响。

Effects on Retinal Stimulation of the Geometry and the Insertion Location of Penetrating Electrodes.

作者信息

Son Yunseo, Chen Zhijie Charles, Roh Hyeonhee, Lee Byung Chul, Im Maesoon

出版信息

IEEE Trans Neural Syst Rehabil Eng. 2023;31:3803-3812. doi: 10.1109/TNSRE.2023.3317496. Epub 2023 Sep 28.

Abstract

Retinal implants have been developed and implanted to restore vision from outer retinal degeneration, but their performance is still limited due to the poor spatial resolution. To improve the localization of stimulation, microelectrodes in various three-dimensional (3D) shapes have been investigated. In particular, computational simulation is crucial for optimizing the performance of a novel microelectrode design before actual fabrication. However, most previous studies have assumed a uniform conductivity for the entire retina without testing the effect of electrodes placement in different layers. In this study, we used the finite element method to simulate electric fields created by 3D microelectrodes of three different designs in a retina model with a stratified conductivity profile. The three electrode designs included two conventional shapes - a conical electrode (CE) and a pillar electrode (PE); we also proposed a novel structure of pillar electrode with an insulating wall (PEIW). A quantitative comparison of these designs shows the PEIW generates a stronger and more confined electric field with the same current injection, which is preferred for high-resolution retinal prostheses. Moreover, our results demonstrate both the magnitude and the shape of potential distribution generated by a penetrating electrode depend not only on the geometry, but also substantially on the insertion depth of the electrode. Although epiretinal insertions are mainly discussed, we also compared results for subretinal insertions. The results provide valuable insights for improving the spatial resolution of retinal implants using 3D penetrating microelectrodes and highlight the importance of considering the heterogeneity of conductivities in the retina.

摘要

视网膜植入物已被研发并植入,用于恢复因外层视网膜变性而丧失的视力,但其性能仍因空间分辨率低而受限。为了提高刺激的定位精度,人们对各种三维(3D)形状的微电极进行了研究。特别是,在实际制造之前,计算模拟对于优化新型微电极设计的性能至关重要。然而,大多数先前的研究都假设整个视网膜具有均匀的电导率,而没有测试电极放置在不同层中的效果。在本研究中,我们使用有限元方法,在具有分层电导率分布的视网膜模型中,模拟三种不同设计的3D微电极产生的电场。这三种电极设计包括两种传统形状——锥形电极(CE)和柱状电极(PE);我们还提出了一种带有绝缘壁的新型柱状电极结构(PEIW)。对这些设计的定量比较表明,在相同电流注入情况下,PEIW产生的电场更强且更集中,这对于高分辨率视网膜假体来说是更优的。此外,我们的结果表明,穿透电极产生的电位分布的大小和形状不仅取决于几何形状,还很大程度上取决于电极的插入深度。虽然主要讨论了视网膜表面植入,但我们也比较了视网膜下植入的结果。这些结果为使用3D穿透微电极提高视网膜植入物的空间分辨率提供了有价值的见解,并突出了考虑视网膜电导率异质性的重要性。

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