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A weighted sampling algorithm for the design of RNA sequences with targeted secondary structure and nucleotide distribution

机译:用于设计具有靶向二级结构和核苷酸分布的RNA序列的加权采样算法

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摘要

>Motivations: The design of RNA sequences folding into predefined secondary structures is a milestone for many synthetic biology and gene therapy studies. Most of the current software uses similar local search strategies (i.e. a random seed is progressively adapted to acquire the desired folding properties) and more importantly do not allow the user to control explicitly the nucleotide distribution such as the GC-content in their sequences. However, the latter is an important criterion for large-scale applications as it could presumably be used to design sequences with better transcription rates and/or structural plasticity.>Results: In this article, we introduce IncaRNAtion, a novel algorithm to design RNA sequences folding into target secondary structures with a predefined nucleotide distribution. IncaRNAtion uses a global sampling approach and weighted sampling techniques. We show that our approach is fast (i.e. running time comparable or better than local search methods), seedless (we remove the bias of the seed in local search heuristics) and successfully generates high-quality sequences (i.e. thermodynamically stable) for any GC-content. To complete this study, we develop a hybrid method combining our global sampling approach with local search strategies. Remarkably, our glocal methodology overcomes both local and global approaches for sampling sequences with a specific GC-content and target structure.>Availability: IncaRNAtion is available at >Contact: or >Supplementary Information: are available at Bioinformatics online.
机译:>动机:折叠成预定二级结构的RNA序列设计是许多合成生物学和基因疗法研究的里程碑。当前大多数软件都使用类似的本地搜索策略(即,随机种子逐渐适应所需的折叠特性),更重要的是,不允许用户明确控制其序列中的核苷酸分布,例如GC含量。但是,后者是大规模应用的重要标准,因为它可能被用来设计具有更好转录速率和/或结构可塑性的序列。>结果:在本文中,我们介绍了 IncaRNAtion 一种新颖的算法,可设计可折叠成具有预定核苷酸分布的靶二级结构的RNA序列。 IncaRNAtion 使用全局采样方法和加权采样技术。我们证明了我们的方法是快速的(即运行时间与本地搜索方法相当或比本地搜索方法更好),无种子(我们在本地搜索试探法中消除了种子的偏差)并成功生成了任何GC-的高质量序列(即热力学稳定)内容。为了完成这项研究,我们开发了一种混合方法,将我们的全局采样方法与本地搜索策略结合在一起。值得注意的是,我们的glocal方法克服了局部和全局采样具有特定GC含量和目标结构的序列的方法。>可用性: IncaRNAtion 可从>联系方式:< / strong>或>补充信息:可在线访问生物信息学。

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