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通过合理设计连接拓扑结构来调控RNA折叠与功能。

Tuning RNA folding and function through rational design of junction topology.

作者信息

Daher May, Mustoe Anthony M, Morriss-Andrews Alex, Brooks Charles L, Walter Nils G

机构信息

Single Molecule Analysis Group and Center for RNA Biomedicine, Department of Chemistry, University of Michigan, 930 N. University Avenue, Ann Arbor, MI 48109-1055, USA.

Biophysics, University of Michigan, 930 N. University Avenue, Ann Arbor, MI 48109-1055, USA.

出版信息

Nucleic Acids Res. 2017 Sep 19;45(16):9706-9715. doi: 10.1093/nar/gkx614.

Abstract

Structured RNAs such as ribozymes must fold into specific 3D structures to carry out their biological functions. While it is well-known that architectural features such as flexible junctions between helices help guide RNA tertiary folding, the mechanisms through which junctions influence folding remain poorly understood. We combine computational modeling with single molecule Förster resonance energy transfer (smFRET) and catalytic activity measurements to investigate the influence of junction design on the folding and function of the hairpin ribozyme. Coarse-grained simulations of a wide range of junction topologies indicate that differences in sterics and connectivity, independent of stacking, significantly affect tertiary folding and appear to largely explain previously observed variations in hairpin ribozyme stability. We further use our simulations to identify stabilizing modifications of non-optimal junction topologies, and experimentally validate that a three-way junction variant of the hairpin ribozyme can be stabilized by specific insertion of a short single-stranded linker. Combined, our multi-disciplinary study further reinforces that junction sterics and connectivity are important determinants of RNA folding, and demonstrates the potential of coarse-grained simulations as a tool for rationally tuning and optimizing RNA folding and function.

摘要

诸如核酶之类的结构化RNA必须折叠成特定的三维结构才能发挥其生物学功能。虽然众所周知,诸如螺旋之间的柔性连接等结构特征有助于引导RNA的三级折叠,但连接如何影响折叠的机制仍知之甚少。我们将计算建模与单分子荧光共振能量转移(smFRET)以及催化活性测量相结合,以研究连接设计对发夹状核酶折叠和功能的影响。对多种连接拓扑结构进行的粗粒度模拟表明,空间位阻和连接性的差异(与堆积无关)会显著影响三级折叠,并且似乎很大程度上解释了先前观察到的发夹状核酶稳定性的变化。我们进一步利用模拟来确定非最优连接拓扑结构的稳定修饰,并通过实验验证发夹状核酶的一种三向连接变体可以通过特定插入短单链接头来实现稳定。综合来看,我们的多学科研究进一步强化了连接的空间位阻和连接性是RNA折叠的重要决定因素,并证明了粗粒度模拟作为合理调节和优化RNA折叠及功能工具的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c3ba/5766210/3b3b66caf83b/gkx614fig1.jpg

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