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Activation of ganglion cells and axon bundles using epiretinal electrical stimulation

机译:使用表位电刺激激活神经节细胞和轴突束

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摘要

Epiretinal prostheses for treating blindness activate axon bundles, causing large, arc-shaped visual percepts that limit the quality of artificial vision. Improving the function of epiretinal prostheses therefore requires understanding and avoiding axon bundle activation. This study introduces a method to detect axon bundle activation on the basis of its electrical signature and uses the method to test whether epiretinal stimulation can directly elicit spikes in individual retinal ganglion cells without activating nearby axon bundles. Combined electrical stimulation and recording from isolated primate retina were performed using a custom multielectrode system (512 electrodes, 10-mu m diameter, 60-mu m pitch). Axon bundle signals were identified by their bidirectional propagation, speed, and increasing amplitude as a function of stimulation current. The threshold for bundle activation varied across electrodes and retinas, and was in the same range as the threshold for activating retinal ganglion cells near their somas. In the peripheral retina, 45% of electrodes that activated individual ganglion cells (17% of all electrodes) did so without activating bundles. This permitted selective activation of 21% of recorded ganglion cells (7% of expected ganglion cells) over the array. In one recording in the central retina, 75% of electrodes that activated individual ganglion cells (16% of all electrodes) did so without activating bundles. The ability to selectively activate a subset of retinal ganglion cells without axon bundles suggests a possible novel architecture for future epiretinal prostheses.
机译:对处理失明的齿膜前肢体激活轴突,导致限制人工视觉质量的大,弧形视觉感受。因此,提高表腔假体的功能需要了解和避免轴突束激活。本研究介绍了一种在其电签名的基础上检测Axon Bundle激活的方法,并使用该方法测试Epiretinal刺激是否可以直接在单个视网膜神经节细胞中引发尖峰,而不激活附近的轴突。使用定制多电极系统(512电极,10μm直径,60μm间距)进行分离的灵长类动物视网膜的组合电刺激和记录。由于刺激电流的函数,通过其双向传播,速度和增加幅度来识别Axon束信号。束激活的阈值在电极和视网膜上变化,并且与激活靠近其索马斯附近的视网膜神经节细胞的阈值相同。在外周视网膜中,45%的电极激活单个神经节细胞(占所有电极的17%),在不激活束的情况下使其产生。这允许在阵列上选择21%的记录神经节细胞(7%的预期神经节细胞)。在中央视网膜的一个记录中,75%的电极激活单个神经节细胞(16%的所有电极)在不激活束的情况下使其产生。选择性地激活无轴承束的视网膜神经节细胞子集的能力表明了未来表位假肢可能的新建筑。

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