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容性样光电器件视网膜外刺激通过募集侧抑制网络来增强和缩小视网膜神经节细胞的网络介导的活动。

Capacitive-like photovoltaic epiretinal stimulation enhances and narrows the network-mediated activity of retinal ganglion cells by recruiting the lateral inhibitory network.

机构信息

Medtronic Chair in Neuroengineering, Center for Neuroprosthetics and Institute of Bioengineering, School of Engineering, École polytechnique fédérale de Lausanne, Lausanne, Switzerland.

出版信息

J Neural Eng. 2019 Oct 18;16(6):066009. doi: 10.1088/1741-2552/ab3913.

Abstract

UNLABELLED

Photovoltaic retinal prostheses theoretically offer the possibility of stand-alone high-resolution electrical stimulation of the retina. However, achieving focused epiretinal stimulation is particularly challenging because of axonal activation and electrical cell coupling. Recent evidence shows that long electric pulses permit a more focal activation of retinal ganglion cells, and non-rectangular waveforms induce higher network-mediated indirect activity.

OBJECTIVE

The role of the pulse shape in focusing the retinal ganglion cell activation and the underlying mechanisms are not yet fully understood.

APPROACH

To address this question, we implemented a hybrid ex vivo and in silico approach. We recorded the evoked activity of retinas explanted from retinal degeneration ten mice upon photovoltaic and electrical stimulation with rectangular or non-rectangular capacitive-like voltage pulses. We used a biophysical model to investigate the role of the pulse shape and the pulse duration on the genesis and the extent of the network-mediated activity in retinal ganglion cells.

MAIN RESULTS

Altogether, our results suggest that non-rectangular capacitive-like voltage pulses activate more strongly the inner excitatory and inhibitory layers of the retina, when compared to a rectangular stimulation with paired pulse amplitude and duration. This feature leads to an increase of the network-mediated activity and a decrease in the network-mediated electrical receptive field of the stimulated retinal ganglion cell.

SIGNIFICANCE

These results demonstrate that recruiting the inner retinal cells with epiretinal stimulation enables us not only to bypass axonal stimulation, but also to obtain a more focal activation due to the natural lateral inhibition. The involvement of the inhibitory feedback from amacrine cells in the genesis of the network-mediated activity represents a novel biological tool with which to confine the response of the retinal ganglion cells. These results support future waveform engineering strategies and offer new perspectives on epiretinal devices to better shape prosthetic perception.

摘要

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光感视网膜假体理论上提供了独立的高分辨率视网膜电刺激的可能性。然而,由于轴突激活和电细胞耦合,实现聚焦的视网膜上刺激特别具有挑战性。最近的证据表明,长电脉冲允许视网膜神经节细胞更聚焦地激活,而非矩形波形诱导更高的网络介导的间接活动。

目的

脉冲形状在聚焦视网膜神经节细胞激活中的作用及其潜在机制尚未完全理解。

方法

为了解决这个问题,我们采用了混合的离体和计算机模拟方法。我们记录了从 10 只视网膜退化的老鼠中取出的视网膜在光感和电刺激下,用矩形或非矩形电容样电压脉冲时的诱发活动。我们使用生物物理模型来研究脉冲形状和脉冲持续时间对视网膜神经节细胞网络介导活动的起源和程度的作用。

主要结果

总的来说,我们的结果表明,与具有相同的脉冲幅度和持续时间的矩形刺激相比,非矩形电容样电压脉冲更强烈地激活视网膜的内兴奋和抑制层。这一特征导致网络介导的活动增加和受刺激的视网膜神经节细胞的网络介导的电感受野减小。

意义

这些结果表明,用视网膜上刺激来募集内视网膜细胞,不仅使我们能够绕过轴突刺激,而且由于天然的侧向抑制,还能获得更聚焦的激活。从无长突细胞的抑制性反馈在网络介导的活动的起源中的参与代表了一种新的生物学工具,可用来限制视网膜神经节细胞的反应。这些结果支持未来的波形工程策略,并为更好地塑造假体感知的视网膜上设备提供了新的视角。

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