Department of Chemistry and Biophysics, University of Michigan, 930 North University Avenue, Ann Arbor, MI 48109-1055, United States.
Curr Opin Struct Biol. 2011 Jun;21(3):296-305. doi: 10.1016/j.sbi.2011.03.009. Epub 2011 Apr 14.
Accompanying recent advances in determining RNA secondary structure is the growing appreciation for the importance of relatively simple topological constraints, encoded at the secondary structure level, in defining the overall architecture, folding pathways, and dynamic adaptability of RNA. A new view is emerging in which tertiary interactions do not define RNA 3D structure, but rather, help select specific conformers from an already narrow, topologically pre-defined conformational distribution. Studies are providing fundamental insights into the nature of these topological constraints, how they are encoded by the RNA secondary structure, and how they interplay with other interactions, breathing new meaning to RNA secondary structure. New approaches have been developed that take advantage of topological constraints in determining RNA backbone conformation based on secondary structure, and a limited set of other, easily accessible constraints. Topological constraints are also providing a much-needed framework for rationalizing and describing RNA dynamics and structural adaptation. Finally, studies suggest that topological constraints may play important roles in steering RNA folding pathways. Here, we review recent advances in our understanding of topological constraints encoded by the RNA secondary structure.
伴随 RNA 二级结构测定方面的最新进展,人们越来越认识到,相对简单的拓扑约束在定义 RNA 的整体结构、折叠途径和动态适应性方面具有重要意义。目前出现了一种新观点,即三级相互作用并不决定 RNA 的三维结构,而是帮助从已经狭窄的拓扑预定义构象分布中选择特定构象。研究为这些拓扑约束的性质、它们如何由 RNA 二级结构编码以及它们如何与其他相互作用相互作用提供了基本的见解,为 RNA 二级结构赋予了新的意义。已经开发了新的方法,利用拓扑约束基于二级结构来确定 RNA 骨架构象,以及一组有限的其他易于访问的约束。拓扑约束也为合理化和描述 RNA 动力学和结构适应性提供了一个非常需要的框架。最后,研究表明,拓扑约束可能在引导 RNA 折叠途径方面发挥重要作用。在这里,我们综述了对 RNA 二级结构所编码的拓扑约束的理解的最新进展。