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通过进化型SHAPE化学进行RNA结构分析。

RNA structural analysis by evolving SHAPE chemistry.

作者信息

Spitale Robert C, Flynn Ryan A, Torre Eduardo A, Kool Eric T, Chang Howard Y

机构信息

Howard Hughes Medical Institute and Program in Epithelial Biology, Stanford University School of Medicine, Stanford, CA, USA.

出版信息

Wiley Interdiscip Rev RNA. 2014 Nov-Dec;5(6):867-81. doi: 10.1002/wrna.1253. Epub 2014 Aug 15.

Abstract

RNA is central to the flow of biological information. From transcription to splicing, RNA localization, translation, and decay, RNA is intimately involved in regulating every step of the gene expression program, and is thus essential for health and understanding disease. RNA has the unique ability to base-pair with itself and other nucleic acids to form complex structures. Hence the information content in RNA is not simply its linear sequence of bases, but is also encoded in complex folding of RNA molecules. A general chemical functionality that all RNAs have is a 2'-hydroxyl group in the ribose ring, and the reactivity of the 2'-hydroxyl in RNA is gated by local nucleotide flexibility. In other words, the 2'-hydroxyl is reactive at single-stranded and conformationally flexible positions but is unreactive at nucleotides constrained by base-pairing. Recent efforts have been focused on developing reagents that modify RNA as a function of RNA 2' hydroxyl group reactivity. Such RNA structure probing techniques can be read out by primer extension in experiments termed RNA SHAPE (selective 2'- hydroxyl acylation and primer extension). Herein, we describe the efforts devoted to the design and utilization of SHAPE probes for characterizing RNA structure. We also describe current technological advances that are being applied to utilize SHAPE chemistry with deep sequencing to probe many RNAs in parallel. The merging of chemistry with genomics is sure to open the door to genome-wide exploration of RNA structure and function.

摘要

RNA 对于生物信息的流动至关重要。从转录到剪接、RNA 定位、翻译及降解,RNA 都密切参与调控基因表达程序的每一步,因此对于健康和理解疾病都至关重要。RNA 具有与自身及其他核酸碱基配对以形成复杂结构的独特能力。因此,RNA 中的信息内容不仅是其碱基的线性序列,还编码于 RNA 分子的复杂折叠中。所有 RNA 共有的一种一般化学官能团是核糖环中的 2'-羟基,RNA 中 2'-羟基的反应性受局部核苷酸柔韧性的控制。换句话说,2'-羟基在单链和构象灵活的位置具有反应性,但在受碱基配对限制的核苷酸处无反应性。最近的研究致力于开发根据 RNA 2'-羟基反应性来修饰 RNA 的试剂。这种 RNA 结构探测技术可在称为 RNA SHAPE(选择性 2'-羟基酰化和引物延伸)的实验中通过引物延伸读出。在此,我们描述了为设计和利用 SHAPE 探针来表征 RNA 结构所做的努力。我们还描述了当前正在应用的技术进展,即将 SHAPE 化学与深度测序相结合以并行探测多个 RNA。化学与基因组学的融合肯定会为全基因组范围内探索 RNA 的结构和功能打开大门。

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