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A computational proposal for designing structured RNA pools for in vitro selection of RNAs

机译:设计用于体外选择RNA的结构化RNA池的计算建议

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摘要

Although in vitro selection technology is a versatile experimental tool for discovering novel synthetic RNA molecules, finding complex RNA molecules is difficult because most RNAs identified from random sequence pools are simple motifs, consistent with recent computational analysis of such sequence pools. Thus, enriching in vitro selection pools with complex structures could increase the probability of discovering novel RNAs. Here we develop an approach for engineering sequence pools that links RNA sequence space regions with corresponding structural distributions via a “mixing matrix” approach combined with a graph theory analysis. We define five classes of mixing matrices motivated by covariance mutations in RNA; these constructs define nucleotide transition rates and are applied to chosen starting sequences to yield specific nonrandom pools. We examine the coverage of sequence space as a function of the mixing matrix and starting sequence via clustering analysis. We show that, in contrast to random sequences, which are associated only with a local region of sequence space, our designed pools, including a structured pool for GTP aptamers, can target specific motifs. It follows that experimental synthesis of designed pools can benefit from using optimized starting sequences, mixing matrices, and pool fractions associated with each of our constructed pools as a guide. Automation of our approach could provide practical tools for pool design applications for in vitro selection of RNAs and related problems.
机译:尽管体外选择技术是发现新型合成RNA分子的通用实验工具,但是发现复杂的RNA分子却很困难,因为从随机序列库中鉴定出的大多数RNA都是简单的基序,与最近对该序列库的计算分析相符。因此,丰富具有复杂结构的体外选择库可能会增加发现新型RNA的可能性。在这里,我们开发了一种用于工程序列库的方法,该方法通过“混合矩阵”方法与图论分析相结合,将RNA序列空间区域与相应的结构分布联系起来。我们定义了由RNA的协方差突变引起的五类混合矩阵。这些构建体定义了核苷酸过渡速率,并应用于选定的起始序列以产生特定的非随机库。我们通过聚类分析来检查序列空间的覆盖范围,该范围是混合矩阵和起始序列的函数。我们显示,与仅与序列空间的局部区域相关的随机序列形成对比,我们设计的库(包括GTP适体的结构化库)可以靶向特定基序。因此,通过使用优化的起始序列,混合矩阵和与我们构建的每个池相关的池分数,可以受益于设计池的实验合成。我们方法的自动化可以为池设计应用提供实用工具,用于体外选择RNA和相关问题。

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