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首页> 外文期刊>Developmental dynamics: an official publication of the American Association of Anatomists >The RNA-binding Protein Caper is Required for Sensory Neuron Development in Drosophila Melanogaster
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The RNA-binding Protein Caper is Required for Sensory Neuron Development in Drosophila Melanogaster

机译:RNA结合的蛋白质蜂鸣器是在果蝇Melanogaster中的感官神经元发育所必需的

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摘要

Background: Alternative splicing mediated by RNA-binding proteins (RBPs) is emerging as a fundamental mechanism for the regulation of gene expression. Alternative splicing has been shown to be a widespread phenomenon that facilitates the diversification of gene products in a tissue-specific manner. Although defects in alternative splicing are rooted in many neurological disorders, only a small fraction of splicing factors have been investigated in detail. Results: We find that the splicing factor Caper is required for the development of multiple different mechanosensory neuron subtypes at multiple life stages in Drosophila melanogaster. Disruption of Caper function causes defects in dendrite morphogenesis of larval dendrite arborization neurons and neuronal positioning of embryonic proprioceptors, as well as the development and maintenance of adult mechanosensory bristles. Additionally, we find that Caper dysfunction results in aberrant locomotor behavior in adult flies. Transcriptome-wide analyses further support a role for Caper in alternative isoform regulation of genes that function in neurogenesis. Conclusions: Our results provide the first evidence for a fundamental and broad requirement for the highly conserved splicing factor Caper in the development and maintenance of the nervous system and provide a framework for future studies on the detailed mechanism of Caper-mediated RNA regulation. (C) 2017 Wiley Periodicals, Inc.
机译:背景:由RNA结合蛋白(RBP)介导的替代剪接作为基因表达调节的基本机制。已显示替代剪接是一种广泛的现象,便于以组织特异性方式促进基因产物的多样化。尽管替代剪接中的缺陷植根于许多神经系统紊乱中,但是已经详细研究了仅研究了一小部分的剪接因子。结果:我们发现剪接因子帽是在果蝇在果蝇的多个寿命中开发多种不同机械感性神经元亚型所必需的。钙蛋白功能的破坏导致幼虫树突树突树脂植物神经元的缺陷和胚胎预防者的神经元定位,以及成人机械囊肿的开发和维护。此外,我们发现Caper功能障碍导致成人苍蝇中的异常运动行为。转录组 - 范围的分析进一步支持Chaper在神经发生中起作用的基因的替代同种型调节中的作用。结论:我们的结果为高度保守的拼接因子帽提供了基本和广泛要求的第一个证据,在神经系统的开发和维护中,为未来的钙钙介导的RNA调节提供了框架。 (c)2017 Wiley期刊,Inc。

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