Mustoe Anthony M, Brooks Charles L, Al-Hashimi Hashim M
Department of Biophysics, University of Michigan, Ann Arbor, MI 48109, USA.
Department of Biophysics, University of Michigan, Ann Arbor, MI 48109, USA Department of Chemistry, University of Michigan, Ann Arbor, MI 48109, USA
Nucleic Acids Res. 2014 Oct;42(18):11792-804. doi: 10.1093/nar/gku807. Epub 2014 Sep 12.
Recent studies have shown that basic steric and connectivity constraints encoded at the secondary structure level are key determinants of 3D structure and dynamics in simple two-way RNA junctions. However, the role of these topological constraints in higher order RNA junctions remains poorly understood. Here, we use a specialized coarse-grained molecular dynamics model to directly probe the thermodynamic contributions of topological constraints in defining the 3D architecture and dynamics of transfer RNA (tRNA). Topological constraints alone restrict tRNA's allowed conformational space by over an order of magnitude and strongly discriminate against formation of non-native tertiary contacts, providing a sequence independent source of folding specificity. Topological constraints also give rise to long-range correlations between the relative orientation of tRNA's helices, which in turn provides a mechanism for encoding thermodynamic cooperativity between distinct tertiary interactions. These aspects of topological constraints make it such that only several tertiary interactions are needed to confine tRNA to its native global structure and specify functionally important 3D dynamics. We further show that topological constraints are conserved across tRNA's different naturally occurring secondary structures. Taken together, our results emphasize the central role of secondary-structure-encoded topological constraints in defining RNA 3D structure, dynamics and folding.
最近的研究表明,在二级结构水平编码的基本空间位阻和连接性限制是简单双向RNA接头中三维结构和动力学的关键决定因素。然而,这些拓扑限制在高阶RNA接头中的作用仍知之甚少。在这里,我们使用一种专门的粗粒度分子动力学模型,直接探究拓扑限制在定义转运RNA(tRNA)三维结构和动力学方面的热力学贡献。仅拓扑限制就将tRNA允许的构象空间限制了一个数量级以上,并强烈抑制非天然三级接触的形成,提供了一种与序列无关的折叠特异性来源。拓扑限制还导致tRNA螺旋相对取向之间的长程相关性,这反过来又为编码不同三级相互作用之间的热力学协同性提供了一种机制。拓扑限制的这些方面使得仅需要几个三级相互作用就能将tRNA限制在其天然全局结构中,并指定功能上重要的三维动力学。我们进一步表明,拓扑限制在tRNA不同的天然二级结构中是保守的。综上所述,我们的结果强调了二级结构编码的拓扑限制在定义RNA三维结构、动力学和折叠中的核心作用。