The Spatial Extent of Epiretinal Electrical Stimulation in the Healthy Mouse Retina.

Q1 Medicine Neurosignals Pub Date : 2017-01-01 Epub Date: 2017-07-26 DOI:10.1159/000479459
Zohreh Hosseinzadeh, Archana Jalligampala, Eberhart Zrenner, Daniel Lleweylln Rathbun
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引用次数: 7

Abstract

Background/aims: Retinal prostheses use electrical stimulation to restore functional vision to patients blinded by retinitis pigmentosa. A key detail is the spatial pattern of ganglion cells activated by stimulation. Therefore, we characterized the spatial extent of network-mediated electrical activation of retinal ganglion cells (RGCs) in the epiretinal monopolar electrode configuration.

Methods: Healthy mouse RGC activities were recorded with a micro-electrode array (MEA). The stimuli consisted of monophasic rectangular cathodic voltage pulses and cycling full-field light flashes.

Results: Voltage tuning curves exhibited significant hysteresis, reflecting adaptation to electrical stimulation on the time scale of seconds. Responses decreased from 0 to 300 µm, and were also dependent on the strength of stimulation. Applying the Rayleigh criterion to the half-width at half-maximum of the electrical point spread function suggests a visual acuity limit of no better than 20/946. Threshold voltage showed only a modest increase across these distances.

Conclusion: The existence of significant hysteresis requires that future investigations of electrical retinal stimulation control for such long-memory adaptation. The spread of electrical activation beyond 200 µm suggests that neighbouring electrodes in epiretinal implants based on indirect stimulation of RGCs may be indiscriminable at interelectrode spacings as large as 400 µm.

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健康小鼠视网膜电刺激的空间范围。
背景/目的:视网膜假体利用电刺激恢复色素性视网膜炎致盲患者的功能性视力。一个关键的细节是受刺激激活的神经节细胞的空间模式。因此,我们表征了视网膜神经节细胞(RGCs)在视网膜外单极电极结构中网络介导的电激活的空间范围。方法:用微电极阵列(MEA)记录健康小鼠RGC活性。刺激包括单相矩形阴极电压脉冲和循环的全场光闪烁。结果:电压调谐曲线具有明显的滞后,反映了在秒尺度上对电刺激的适应。反应从0µm下降到300µm,也取决于刺激的强度。用瑞利判据对电点扩散函数的半宽度进行分析,得出视力极限不优于20/946。阈值电压在这些距离上只显示出适度的增加。结论:视网膜电刺激对这种长记忆适应的控制需要进一步的研究。超过200µm的电激活分布表明,在电极间距达400µm时,基于rgc间接刺激的视网膜前植入物的相邻电极可能是不区分的。
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来源期刊
Neurosignals
Neurosignals 医学-神经科学
CiteScore
3.40
自引率
0.00%
发文量
3
审稿时长
>12 weeks
期刊介绍: Neurosignals is an international journal dedicated to publishing original articles and reviews in the field of neuronal communication. Novel findings related to signaling molecules, channels and transporters, pathways and networks that are associated with development and function of the nervous system are welcome. The scope of the journal includes genetics, molecular biology, bioinformatics, (patho)physiology, (patho)biochemistry, pharmacology & toxicology, imaging and clinical neurology & psychiatry. Reported observations should significantly advance our understanding of neuronal signaling in health & disease and be presented in a format applicable to an interdisciplinary readership.
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