IEEE Trans Neural Syst Rehabil Eng. 2021;29:2445-2455. doi: 10.1109/TNSRE.2021.3128878. Epub 2021 Nov 25.
To restore the sight of individuals blinded by outer retinal degeneration, numerous retinal prostheses have been developed. However, the performance of those implants is still hampered by some factors including the lack of comprehensive understanding of the electrically-evoked responses arising in various retinal ganglion cell (RGC) types. In this study, we characterized the electrically-evoked network-mediated responses (hereafter referred to as electric responses) of ON-OFF direction-selective (DS) RGCs in rabbit and mouse retinas for the first time. Interestingly, both species in common demonstrated strong negative correlations between spike counts of electric responses and direction selective indices (DSIs), suggesting electric stimulation activates inhibitory presynaptic neurons that suppress null direction responses for high direction tuning in their light responses. The DS cells of the two species showed several differences including different numbers of bursts. Also, spiking patterns were more heterogeneous across DS RGCs of rabbits than those of mice. The electric response magnitudes of rabbit DS cells showed positive and negative correlations with ON and OFF light response magnitudes to preferred direction motion, respectively. But the mouse DS cells showed positive correlations in both comparisons. Our Fano Factor (FF) and spike time tiling coefficient (STTC) analyses revealed that spiking consistencies across repeats were reduced in late electric responses in both species. Moreover, the response consistencies of DS RGCs were lower than those of non-DS RGCs. Our results indicate the species-dependent retinal circuits may result in different electric response features and therefore suggest a proper animal model may be crucial in prosthetic researches.
为了恢复因外视网膜变性而失明的个体的视力,已经开发出许多视网膜假体。然而,这些植入物的性能仍然受到一些因素的限制,包括对各种视网膜神经节细胞(RGC)类型中产生的电响应缺乏全面了解。在这项研究中,我们首次描述了兔和鼠视网膜中 ON-OFF 方向选择性(DS)RGC 的电响应网络介导的反应(以下简称电响应)。有趣的是,这两个物种都表现出电响应中的尖峰计数与方向选择性指数(DSI)之间的强烈负相关,这表明电刺激激活了抑制性突触前神经元,从而抑制了其光响应中高方向调谐的空方向响应。这两个物种的 DS 细胞表现出一些差异,包括爆发的数量不同。此外,兔子的 DS RGC 中的尖峰模式比老鼠的更具异质性。兔子 DS 细胞的电响应幅度与对侧光响应的大小呈正相关,而负向光响应的大小呈负相关。但是,鼠标 DS 细胞在这两种比较中均呈正相关。我们的 Fano 因子(FF)和尖峰时间平铺系数(STTC)分析表明,在两个物种中,晚期电响应中的重复尖峰一致性降低。此外,DS RGC 的响应一致性低于非 DS RGC。我们的结果表明,种间差异的视网膜回路可能导致不同的电响应特征,因此建议适当的动物模型在假体研究中可能至关重要。