Characterizing the rod pathway in cone-dominant thirteen-lined ground squirrels

Riley Ferguson, K. Miyagishima, F. Nadal-Nicolás, Wei Li
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Abstract

AII-amacrine cells (AIIs) are widely accepted as a critical element of scotopic pathways mediating night vision in the mammalian retina and have been well-characterized in rod-dominant mice, rabbits, and non-human primates. The rod pathway is characteristic of all mammalian eyes, however, the anatomic and physiologic role of AIIs and the rod pathways in cone dominant thirteen-lined ground squirrels (TLGS) is limited. Here, we employed both immunohistochemistry and electrophysiological approaches to investigate the morphology of AIIs and functional aspects of the rod pathway in TLGS. In all TLGS retinas examined, putative AIIs were calretinin-positive and exhibited connections to rod bipolar cells with decreased cell density and expanded arborization. Notably, AIIs retained connections with each other via gap junctions labeled with Connexin36. Comparisons between single photoreceptor recordings and full-field electroretinograms revealed scotopic ERG responses were mediated by both rods and cones. Thus, the components of the rod pathway are conserved in TLGS and rod signals traverse the retina in these cone-dominant animals. AIIs are sparsely populated, matching the diminished rod and rod bipolar cell populations compared to rod-dominant species. The infrequent distribution and lateral spacing of AII’s indicate that they probably do not play a significant role in cone signaling pathways that encode information at a finer spatial scale. This contrasts with the mouse retina, where they significantly contribute to cone signaling pathways. Therefore, the AII’s original function is likely that of a ‘rod’ amacrine cell, and its role in cone pathways in the mouse retina might be an adaptive feature stemming from its rod dominance.
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十三线地松鼠视锥优势的杆状通路特征
AII-amacrine 细胞(AIIs)被广泛认为是哺乳动物视网膜中介导夜视的光感通路的关键要素,在视杆细胞占优势的小鼠、兔子和非人类灵长类动物中已经得到了很好的描述。视杆细胞通路是所有哺乳动物眼睛的特征,然而,在锥体显性十三线地松鼠(TLGS)中,AIIs 和视杆细胞通路的解剖和生理作用却很有限。在这里,我们采用免疫组化和电生理方法来研究 TLGS 中 AII 的形态和视杆细胞通路的功能。在所有受检的 TLGS 视网膜中,推定的 AIIs 均呈钙视网膜素阳性,并表现出与杆状双极细胞的连接,细胞密度降低,轴化扩大。值得注意的是,AIIs 通过标记有 Connexin36 的缝隙连接彼此保持连接。单个感光器记录与全视场视网膜电图之间的比较显示,视杆细胞和视锥都能介导光斑 ERG 反应。因此,视杆细胞通路的组成部分在 TLGS 中是保守的,视杆细胞信号在这些视锥显性动物的视网膜中穿过。与视杆细胞占优势的物种相比,视杆细胞和视杆双极细胞数量减少,因此AIIs的数量稀少。AII 的稀疏分布和横向间距表明,它们在视锥信号通路中可能并不扮演重要角色,因为视锥信号通路编码的是更精细的空间尺度信息。这与小鼠视网膜的情况形成了鲜明对比,在小鼠视网膜中,AII 对视锥信号通路起着重要作用。因此,AII 的原始功能很可能是 "杆状 "羊膜细胞的功能,而它在小鼠视网膜锥状体通路中的作用可能是源于其杆状体优势的适应性特征。
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