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Functional Connectivity Map of Retinal Ganglion Cells for Retinal Prosthesis

机译:视网膜假体的视网膜神经节细胞功能连接图

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Retinal prostheses are being developed to restore vision for the blind with retinal diseases such as retinitis pigmentosa (RP) or age-related macular degeneration (AMD). Among the many issues for prosthesis development, stimulation encoding strategy is one of the most essential electrophysiological issues. The more we understand the retinal circuitry how it encodes and processes visual information, the greater it could help decide stimulation encoding strategy for retinal prosthesis. Therefore, we examined how retinal ganglion cells (RGCs) in in-vitro retinal preparation act together to encode a visual scene with multielectrode array (MEA). Simultaneous recording of many RGCs with MEA showed that nearby neurons often fired synchronously, with spike delays mostly within 1 ms range. This synchronized firing - narrow correlation - was blocked by gap junction blocker, heptanol, but not by glutamatergic synapse blocker, kynurenic acid. By tracking down all the RGC pairs which showed narrow correlation, we could harvest 40 functional connectivity maps of RGCs which showed the cell cluster firing together. We suggest that finding functional connectivity map would be useful in stimulation encoding strategy for the retinal prosthesis since stimulating the cluster of RGCs would be more efficient than separately stimulating each individual RGC.
机译:视网膜假体正在开发中,以恢复患有视网膜疾病的盲人的视力,例如色素性视网膜炎(RP)或年龄相关性黄斑变性(AMD)。在假体开发的许多问题中,刺激编码策略是最重要的电生理问题之一。我们对视网膜电路如何编码和处理视觉信息的了解越多,就越有助于决定视网膜假体的刺激编码策略。因此,我们检查了体外视网膜制备中的视网膜神经节细胞(RGC)如何共同发挥作用,以多电极阵列(MEA)编码视觉场景。用MEA同时记录许多RGC的结果表明,附近的神经元通常会同步触发,峰值延迟大多在1 ms范围内。这种同步点火-狭窄的相关性-被缝隙连接阻滞剂庚醇阻滞,但未被谷氨酸能突触阻滞剂强尿酸阻滞。通过追踪所有显示狭窄相关性的RGC对,我们可以获得40个RGC的功能连接图,这些图显示了细胞簇一起发射。我们建议发现功能连接图对于视网膜假体的刺激编码策略将很有用,因为刺激RGC簇比单独刺激每个RGC更有效。

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