JILA, National Institute of Standards and Technology, Department of Chemistry and Biochemistry, University of Colorado, Boulder, CO 80309, USA.
Q Rev Biophys. 2013 Aug;46(3):223-64. doi: 10.1017/S0033583513000048. Epub 2013 Aug 5.
Nearly two decades after Westhof and Michel first proposed that RNA tetraloops may interact with distal helices, tetraloop–receptor interactions have been recognized as ubiquitous elements of RNA tertiary structure. The unique architecture of GNRA tetraloops (N=any nucleotide, R=purine) enables interaction with a variety of receptors, e.g., helical minor grooves and asymmetric internal loops. The most common example of the latter is the GAAA tetraloop–11 nt tetraloop receptor motif. Biophysical characterization of this motif provided evidence for the modularity of RNA structure, with applications spanning improved crystallization methods to RNA tectonics. In this review, we identify and compare types of GNRA tetraloop–receptor interactions. Then we explore the abundance of structural, kinetic, and thermodynamic information on the frequently occurring and most widely studied GAAA tetraloop–11 nt receptor motif. Studies of this interaction have revealed powerful paradigms for structural assembly of RNA, as well as providing new insights into the roles of cations, transition states and protein chaperones in RNA folding pathways. However, further research will clearly be necessary to characterize other tetraloop–receptor and long-range tertiary binding interactions in detail – an important milestone in the quantitative prediction of free energy landscapes for RNA folding.
在 Westhof 和 Michel 首次提出 RNA 四联体可能与远端螺旋相互作用近二十年后,四联体-受体相互作用已被认为是 RNA 三级结构的普遍元素。GNRA 四联体(N=任意核苷酸,R=嘌呤)的独特结构能够与多种受体相互作用,例如螺旋小沟和不对称内部环。后者最常见的例子是 GAAA 四联体-11nt 四联体受体基序。对该基序的生物物理特性的研究为 RNA 结构的模块化提供了证据,其应用范围从改进的结晶方法到 RNA 结构设计。在这篇综述中,我们确定并比较了 GNRA 四联体-受体相互作用的类型。然后,我们探讨了经常出现且研究最广泛的 GAAA 四联体-11nt 受体基序的结构、动力学和热力学信息的丰富性。对这种相互作用的研究揭示了 RNA 结构组装的强大范例,并为阳离子、过渡态和 RNA 折叠途径中的蛋白质伴侣在 RNA 折叠中的作用提供了新的见解。然而,显然需要进一步的研究来详细描述其他四联体-受体和远程三级结合相互作用-这是 RNA 折叠自由能景观定量预测的重要里程碑。