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野生型和RCS大鼠视网膜的视网膜内电生理学及电阻率剖面图

Intraretinal Electrophysiology and Resistivity Profiles of WT and RCS Rat Retina.

作者信息

Jung Marie, Willuweit Antje, Rincón Montes Viviana

机构信息

Institute of Biological Information Processing (IBI-3), Bioelectronics, Forschungszentrum Jülich, 52428 Jülich, Germany.

Department of Physics, RWTH Aachen University, 52056 Aachen, Germany.

出版信息

Sensors (Basel). 2025 Jun 16;25(12):3765. doi: 10.3390/s25123765.

Abstract

Retinal prostheses have been utilized in the treatment of blindness resulting from retinal degeneration. However, they have not met patient expectations, leading to market withdrawals. As a result, research continues to focus on improving visual perception, such as by modeling retinal neural activation. The retina's electrical resistivity profile is key, as it influences the current spread during electrical stimulation. To advance efficient stimulation parameters, more data on the electrical properties of the retina in both its healthy and diseased state is needed. While this question has been addressed in mouse models, few data are available from rat models, whose bigger size is advantageous for many applications. To address this knowledge gap, we used flexible penetrating microelectrode arrays to measure intraretinal impedance and electrophysiological activity in retinas from both healthy (WT) and diseased RCS rats, an established model of retinal degeneration. Consequently, we calculated resistivity profiles, consistent with previous mouse retina findings, and correlated them with spontaneous spiking activity. Hence, both impedance and electrophysiological measurements across retinal depths are demonstrated as valuable tools to identify the optimal stimulation depth and simulate the electric field spread during electrical stimulation, which is particularly useful for the development of retinal prostheses. These findings demonstrate that resistivity changes in the degenerated retina significantly impact stimulation protocols and electric field propagation.

摘要

视网膜假体已被用于治疗因视网膜变性导致的失明。然而,它们并未达到患者的期望,导致产品退出市场。因此,研究继续聚焦于改善视觉感知,例如通过对视网膜神经激活进行建模。视网膜的电阻率分布至关重要,因为它会影响电刺激过程中的电流扩散。为了推进高效的刺激参数,需要更多关于视网膜在健康和患病状态下电学特性的数据。虽然这个问题在小鼠模型中已经得到解决,但大鼠模型的数据却很少,而大鼠更大的体型在许多应用中具有优势。为了填补这一知识空白,我们使用了柔性穿透微电极阵列来测量健康(野生型)和患有视网膜变性的RCS大鼠视网膜内的阻抗和电生理活动。结果,我们计算出了电阻率分布,与之前小鼠视网膜的研究结果一致,并将其与自发放电活动相关联。因此,跨视网膜深度的阻抗和电生理测量都被证明是确定最佳刺激深度和模拟电刺激过程中电场扩散的有价值工具,这对于视网膜假体的开发尤为有用。这些发现表明,退化视网膜中的电阻率变化会显著影响刺激方案和电场传播。

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