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从富含侧线的转录组中洞察电感应器官的发育、生理学和进化。

Insights into electrosensory organ development, physiology and evolution from a lateral line-enriched transcriptome.

作者信息

Modrell Melinda S, Lyne Mike, Carr Adrian R, Zakon Harold H, Buckley David, Campbell Alexander S, Davis Marcus C, Micklem Gos, Baker Clare Vh

机构信息

Department of Physiology, Development and Neuroscience, University of Cambridge, Cambridge, United Kingdom.

Cambridge Systems Biology Centre, University of Cambridge, Cambridge, United Kingdom.

出版信息

Elife. 2017 Mar 27;6:e24197. doi: 10.7554/eLife.24197.

Abstract

The anamniote lateral line system, comprising mechanosensory neuromasts and electrosensory ampullary organs, is a useful model for investigating the developmental and evolutionary diversification of different organs and cell types. Zebrafish neuromast development is increasingly well understood, but neither zebrafish nor is electroreceptive and our molecular understanding of ampullary organ development is rudimentary. We have used RNA-seq to generate a lateral line-enriched gene-set from late-larval paddlefish (). Validation of a subset reveals expression in developing ampullary organs of transcription factor genes critical for hair cell development, and genes essential for glutamate release at hair cell ribbon synapses, suggesting close developmental, physiological and evolutionary links between non-teleost electroreceptors and hair cells. We identify an ampullary organ-specific proneural transcription factor, and candidates for the voltage-sensing L-type Ca channel and rectifying K channel predicted from skate (cartilaginous fish) ampullary organ electrophysiology. Overall, our results illuminate ampullary organ development, physiology and evolution.

摘要

无羊膜动物的侧线系统由机械感觉神经丘和电感觉壶腹器官组成,是研究不同器官和细胞类型的发育及进化多样性的有用模型。斑马鱼神经丘的发育越来越为人所了解,但斑马鱼既没有电感受能力,我们对壶腹器官发育的分子认识也很基础。我们利用RNA测序从晚期幼体匙吻鲟中生成了一个侧线富集基因集。对一个子集的验证揭示了对毛细胞发育至关重要的转录因子基因以及毛细胞带状突触处谷氨酸释放所必需的基因在发育中的壶腹器官中的表达,这表明非硬骨鱼电感受器与毛细胞之间存在密切的发育、生理和进化联系。我们鉴定出一种壶腹器官特异性的原神经转录因子,以及根据鳐鱼(软骨鱼)壶腹器官电生理学预测的电压敏感L型钙通道和整流钾通道的候选基因。总体而言,我们的结果阐明了壶腹器官的发育、生理和进化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b97c/5429088/127d401fdbd2/elife-24197-fig1.jpg

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