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Unraveling pleiotropic functions of A-to-I RNA editing in Drosophila.

机译:揭示果蝇A-to-I RNA编辑的多效性功能。

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摘要

In metazoan cells, transcripts that fold into double-strand RNA structures are endowed with the capacity to undergo A-to-I RNA editing, during which adenosines are catalytically deaminated to inosines by a class of enzymes known as ADARs (adenosine deaminases acting on RNA). In Drosophila, a wide range of coding mRNAs associated with signaling in the nervous system undergo A-to-I editing, and loss of editing results in extreme behavioral defects. Furthermore, there are indications that the precursors of endogenous small interfering RNAs also undergo editing. However, the mechanism by which A-to-I editing is related to ethology in Drosophila is unclear, as are the precise cell-types and developmental stages in which editing is most crucial. We have investigated these issues by altering small RNA production in flies lacking ADAR, and modulating editing levels in both time and space through a variety of transgenic techniques. Our results indicate that genetic re-coding in the nervous system is likely to be the primary pathway through which editing affects behavioral outputs, and further suggest that editing is required to 'fine-tune' neuro-transmission in the adult brain.
机译:在后生动物细胞中,折叠成双链RNA结构的转录物具有进行A-to-I RNA编辑的能力,在此期间,腺苷被称为ADARs的一类酶(作用于RNA的腺苷脱氨酶)催化脱氨成肌苷。 )。在果蝇中,与神经系统信号传导相关的多种编码mRNA均经过A-to-I编辑,而编辑丢失会导致极端的行为缺陷。此外,有迹象表明内源性小干扰RNA的前体也经过编辑。然而,果蝇中从A到I的编辑与行为学相关的机制尚不清楚,精确的细胞类型和发育阶段也是最关键的。我们已经通过改变缺乏ADAR的果蝇中的小RNA产生,并通过多种转基因技术在时间和空间上调节编辑水平来研究这些问题。我们的结果表明,神经系统中的基因重新编码可能是编辑影响行为输出的主要途径,并且进一步表明,需要进行编辑才能“微调”成年大脑中的神经传递。

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