占据不同生态位的啮齿动物视网膜细胞类型和不同视觉编码的改变比例。

IF 8.1 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Current Biology Pub Date : 2025-04-07 Epub Date: 2025-03-04 DOI:10.1016/j.cub.2025.02.014
Annette E Allen, Joshua Hahn, Rose Richardson, Andreea Pantiru, Josh Mouland, Aadhithyan Babu, Beatriz Baño-Otalora, Aboozar Monavarfeshani, Wenjun Yan, Christopher Williams, Jonathan Wynne, Jessica Rodgers, Nina Milosavljevic, Patrycja Orlowska-Feuer, Riccardo Storchi, Joshua R Sanes, Karthik Shekhar, Robert J Lucas
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引用次数: 0

摘要

脊椎动物的视网膜有着共同的基本蓝图,包括按照共同接线图排列的5类神经元。然而,视觉与物种在行为和生态上的差异是一致的,这就提出了进化如何作用于这个电路来调整其计算特征的问题。我们通过比较占据不同生态位的密切相关物种的丘脑视觉代码和视网膜细胞组成来解决这个问题:白天活动的小鼠类Rhabdomys pumilio和夜间活动的实验室小鼠(小家鼠)。利用高密度电生理记录,我们比较了这两个物种的丘脑中单个和群体水平的视觉反应。我们发现Rhabdomys通过非线性时空求和特征的信息通道的选择性扩展实现了更高的时空分辨率视觉编码。单细胞转录组图谱的比较分析表明,这种差异源于支持OFF和ON-OFF反应的视网膜双极和神经节细胞类型的相对丰度增加。这些发现表明,进化可能通过调整共享细胞类型的比例而不是发明新的类型来驱动神经计算的变化,并显示了将高密度生理记录与转录组细胞图谱相匹配以研究大脑进化的能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Altered proportions of retinal cell types and distinct visual codes in rodents occupying divergent ecological niches.

Vertebrate retinas share a basic blueprint comprising 5 neuronal classes arranged according to a common wiring diagram. Yet, vision is aligned with species differences in behavior and ecology, raising the question of how evolution acts on this circuit to adjust its computational characteristics. We address that problem by comparing the thalamic visual code and retinal cell composition in closely related species occupying different niches: Rhabdomys pumilio, which are day-active murid rodents, and nocturnal laboratory mice (Mus musculus). Using high-density electrophysiological recordings, we compare visual responses at both single-unit and population levels in the thalamus of these two species. We find that Rhabdomys achieves a higher spatiotemporal resolution visual code through the selective expansion of information channels characterized by non-linear spatiotemporal summation. Comparative analysis of single-cell transcriptomic atlases reveals that this difference originates with the increased relative abundance of retinal bipolar and ganglion cell types supporting OFF and ON-OFF responses. These findings demonstrate that evolution may drive changes in neural computation by adjusting the proportions of shared cell types rather than inventing new types and show the power of matching high-density physiological recordings with transcriptomic cell atlases to study evolution in the brain.

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来源期刊
Current Biology
Current Biology 生物-生化与分子生物学
CiteScore
11.80
自引率
2.20%
发文量
869
审稿时长
46 days
期刊介绍: Current Biology is a comprehensive journal that showcases original research in various disciplines of biology. It provides a platform for scientists to disseminate their groundbreaking findings and promotes interdisciplinary communication. The journal publishes articles of general interest, encompassing diverse fields of biology. Moreover, it offers accessible editorial pieces that are specifically designed to enlighten non-specialist readers.
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