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SHAPE-Seq 2.0: systematic optimization and extension of high-throughput chemical probing of RNA secondary structure with next generation sequencing

机译:SHAPE-Seq 2.0:利用下一代测序系统优化和扩展RNA二级结构的高通量化学探测

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摘要

RNA structure is a primary determinant of its function, and methods that merge chemical probing with next generation sequencing have created breakthroughs in the throughput and scale of RNA structure characterization. However, little work has been done to examine the effects of library preparation and sequencing on the measured chemical probe reactivities that encode RNA structural information. Here, we present the first analysis and optimization of these effects for selective 2′-hydroxyl acylation analyzed by primer extension sequencing (SHAPE-Seq). We first optimize SHAPE-Seq, and show that it provides highly reproducible reactivity data over a wide range of RNA structural contexts with no apparent biases. As part of this optimization, we present SHAPE-Seq v2.0, a ‘universal’ method that can obtain reactivity information for every nucleotide of an RNA without having to use or introduce a specific reverse transcriptase priming site within the RNA. We show that SHAPE-Seq v2.0 is highly reproducible, with reactivity data that can be used as constraints in RNA folding algorithms to predict structures on par with those generated using data from other SHAPE methods. We anticipate SHAPE-Seq v2.0 to be broadly applicable to understanding the RNA sequence–structure relationship at the heart of some of life's most fundamental processes.
机译:RNA结构是其功能的主要决定因素,将化学探测与下一代测序相结合的方法已在RNA结构表征的通量和规模方面取得了突破。但是,很少有工作来检查文库制备和测序对编码RNA结构信息的化学探针反应性的影响。在这里,我们介绍了通过引物延伸测序(SHAPE-Seq)分析的选择性2'-羟基酰化作用的首次分析和优化。我们首先对SHAPE-Seq进行了优化,并表明它在广泛的RNA结构范围内提供了可重现的反应性数据,没有明显的偏差。作为优化的一部分,我们介绍了SHAPE-Seq v2.0,这是一种“通用”方法,无需使用或在RNA内引入特定的逆转录酶引物位点,即可获得RNA各个核苷酸的反应性信息。我们显示SHAPE-Seq v2.0具有很高的可重复性,其反应性数据可以用作RNA折叠算法的约束条件,以与使用其他SHAPE方法生成的数据相媲美地预测结构。我们期望SHAPE-Seq v2.0广泛适用于理解生活中某些最基本过程的核心的RNA序列与结构的关系。

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