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RNA 折叠的最新进展。

Recent advances in RNA folding.

机构信息

Bioinformatics Group, Department of Computer Science; and Interdisciplinary Center for Bioinformatics, University of Leipzig, Härtelstraße 16-18, D-04107 Leipzig, Germany.

Institute for Theoretical Chemistry, University of Vienna, Währingerstraße 17, A-1090 Wien, Austria.

出版信息

J Biotechnol. 2017 Nov 10;261:97-104. doi: 10.1016/j.jbiotec.2017.07.007. Epub 2017 Jul 8.

Abstract

In the realm of nucleic acid structures, secondary structure forms a conceptually important intermediate level of description and explains the dominating part of the free energy of structure formation. Secondary structures are well conserved over evolutionary time-scales and for many classes of RNAs evolve slower than the underlying primary sequences. Given the close link between structure and function, secondary structure is routinely used as a basis to explain experimental findings. Recent technological advances, finally, have made it possible to assay secondary structure directly using high throughput methods. From a computational biology point of view, secondary structures have a special role because they can be computed efficiently using exact dynamic programming algorithms. In this contribution we provide a short overview of RNA folding algorithms, recent additions and variations and address methods to align, compare, and cluster RNA structures, followed by a tabular summary of the most important software suites in the fields.

摘要

在核酸结构领域,二级结构形成了一个概念上重要的中间描述层次,并解释了结构形成的自由能的主要部分。二级结构在进化时间尺度上得到了很好的保守,并且对于许多类别的 RNA 来说,其进化速度比基础的一级序列慢。鉴于结构与功能之间的紧密联系,二级结构通常被用作解释实验结果的基础。最近的技术进步终于使得使用高通量方法直接测定二级结构成为可能。从计算生物学的角度来看,二级结构具有特殊的作用,因为它们可以使用精确的动态规划算法有效地计算。在本贡献中,我们提供了 RNA 折叠算法的简要概述,包括最近的添加和变化,并讨论了对齐、比较和聚类 RNA 结构的方法,最后以表格形式总结了该领域最重要的软件套件。

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