A single-cell atlas of the bobtail squid visual and nervous system highlights molecular principles of convergent evolution

IF 13.9 1区 生物学 Q1 ECOLOGY
Daria Gavriouchkina, Yongkai Tan, Elise Parey, Fabienne Ziadi-Künzli, Yuko Hasegawa, Laura Piovani, Lin Zhang, Chikatoshi Sugimoto, Nicholas Luscombe, Ferdinand Marlétaz, Daniel S. Rokhsar
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Abstract

The cephalopod and vertebrate visual systems are a textbook example of convergent evolution with unknown molecular underpinnings. Here we characterize 98,537 single-cell transcriptomes in the bobtail squid Euprymna berryi to understand how the cephalopod retina and optic lobes relate to the vertebrate retina. We confirm the overall relative simplicity of the cephalopod retina but identify two related photoreceptor cell subtypes expressing distinct r-opsins. By contrast, the adult optic lobe contains a diverse repertoire of neuronal and glial cell types, with a predominance of dopaminergic neurons. We show that cephalopod-specific gene duplicates probably contributed to this cell type diversification. Comparing neuronal cell population in the optic lobes of hatchlings and adults, we reveal a switch towards dopaminergic neurotransmitter usage with age, indicative of a maturation process. We further identify an FMRF-amide-based retrograde signal from the optic lobe towards the retina that supports the functional analogy of the cephalopod optic lobe cortex and the vertebrate inner retina in visual signal processing from a molecular standpoint. Finally, comparative analyses with vertebrate and arthropod cells suggest a scenario in which two photoreceptor types and two neuronal populations may have already been present in the eye of the bilaterian ancestor.

Abstract Image

短尾乌贼视觉和神经系统的单细胞图谱突出了趋同进化的分子原理
头足类动物和脊椎动物的视觉系统是具有未知分子基础的趋同进化的教科书范例。在这里,我们对短尾鱿鱼(Euprymna berryi)的98,537个单细胞转录组进行了表征,以了解头足类动物视网膜和视叶与脊椎动物视网膜的关系。我们证实了头足类动物视网膜的总体相对简单性,但确定了表达不同r-视蛋白的两种相关的光感受器细胞亚型。相比之下,成人视叶包含多种神经元和胶质细胞类型,以多巴胺能神经元为主。我们表明,头足类动物特异性基因的重复可能有助于这种细胞类型的多样化。比较幼体和成年视叶中的神经元细胞群,我们发现随着年龄的增长,多巴胺能神经递质的使用发生了变化,这表明了一个成熟的过程。我们进一步鉴定了一种基于fmrf酰胺的视叶向视网膜的逆行信号,从分子的角度支持了头足类动物视叶皮层和脊椎动物内视网膜在视觉信号处理中的功能类比。最后,与脊椎动物和节肢动物细胞的比较分析表明,在双边祖先的眼睛中可能已经存在两种光感受器类型和两种神经元群。
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来源期刊
Nature ecology & evolution
Nature ecology & evolution Agricultural and Biological Sciences-Ecology, Evolution, Behavior and Systematics
CiteScore
22.20
自引率
2.40%
发文量
282
期刊介绍: Nature Ecology & Evolution is interested in the full spectrum of ecological and evolutionary biology, encompassing approaches at the molecular, organismal, population, community and ecosystem levels, as well as relevant parts of the social sciences. Nature Ecology & Evolution provides a place where all researchers and policymakers interested in all aspects of life's diversity can come together to learn about the most accomplished and significant advances in the field and to discuss topical issues. An online-only monthly journal, our broad scope ensures that the research published reaches the widest possible audience of scientists.
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