Department of Chemistry and Biochemistry, Department of Microbiology and Plant Biology, University of Oklahoma, Norman, Oklahoma 73019, USA.
RNA. 2018 Dec;24(12):1615-1624. doi: 10.1261/rna.067827.118. Epub 2018 Aug 24.
The revolution in sequencing technology demands new tools to interpret the genetic code. As in vivo transcriptome-wide chemical probing techniques advance, new challenges emerge in the RNA folding problem. The emphasis on one sequence folding into a single minimum free energy structure is fading as a new focus develops on generating RNA structural ensembles and identifying functional structural features in ensembles. This review describes an efficient combinatorially complete method and three free energy minimization approaches to predicting RNA structures with more than one functional fold, as well as two methods for analysis of a thermodynamics-based Boltzmann ensemble of structures. The review then highlights two examples of viral RNA 3'-UTR regions that fold into more than one conformation and have been characterized by single molecule fluorescence energy resonance transfer or NMR spectroscopy. These examples highlight the different approaches and challenges in predicting structure and function from sequence for RNA with multiple biological roles and folds. More well-defined examples and new metrics for measuring differences in RNA structures will guide future improvements in prediction of RNA structure and function from sequence.
测序技术的革命要求新的工具来解读遗传密码。随着体内转录组范围的化学探测技术的进步,RNA 折叠问题出现了新的挑战。对一个序列折叠成一个单一的最小自由能结构的强调正在减弱,因为新的焦点正在发展生成 RNA 结构集合,并在集合中识别功能结构特征。本文描述了一种高效的组合完全方法和三种自由能最小化方法,用于预测具有多个功能折叠的 RNA 结构,以及两种基于热力学的 Boltzmann 结构集合的分析方法。然后,本文重点介绍了两个病毒 RNA 3'-UTR 区域的例子,这些区域折叠成不止一种构象,并通过单分子荧光能量共振转移或 NMR 光谱进行了表征。这些例子突出了具有多种生物学功能和折叠的 RNA 预测结构和功能的不同方法和挑战。更多明确的例子和新的衡量标准,用于衡量 RNA 结构的差异,将指导未来从序列预测 RNA 结构和功能的改进。