Suppr超能文献

单分子机械折叠和 RNA 发夹的展开:单 A-U 到 A·C 碱基对取代和单质子结合的影响及其对 mRNA 结构诱导的-1 核糖体移码的意义。

Single-Molecule Mechanical Folding and Unfolding of RNA Hairpins: Effects of Single A-U to A·C Pair Substitutions and Single Proton Binding and Implications for mRNA Structure-Induced -1 Ribosomal Frameshifting.

机构信息

Division of Chemistry and Biological Chemistry, School of Physical and Mathematical Sciences , Nanyang Technological University , 21 Nanyang Link , Singapore 637371.

School of Physics, and State Key Laboratory of Optoelectronic Materials and Technologies , Sun Yat-sen University , Guangzhou 510275 , People's Republic of China.

出版信息

J Am Chem Soc. 2018 Jul 5;140(26):8172-8184. doi: 10.1021/jacs.8b02970. Epub 2018 Jun 21.

Abstract

A wobble A·C pair can be protonated at near physiological pH to form a more stable wobble A·C pair. Here, we constructed an RNA hairpin (rHP) and three mutants with one A-U base pair substituted with an A·C mismatch on the top (near the loop, U22C), middle (U25C), and bottom (U29C) positions of the stem, respectively. Our results on single-molecule mechanical (un)folding using optical tweezers reveal the destabilization effect of A-U to A·C pair substitution and protonation-dependent enhancement of mechanical stability facilitated through an increased folding rate, or decreased unfolding rate, or both. Our data show that protonation may occur rapidly upon the formation of an apparent mechanical folding transition state. Furthermore, we measured the bulk -1 ribosomal frameshifting efficiencies of the hairpins by a cell-free translation assay. For the mRNA hairpins studied, -1 frameshifting efficiency correlates with mechanical unfolding force at equilibrium and folding rate at around 15 pN. U29C has a frameshifting efficiency similar to that of rHP (∼2%). Accordingly, the bottom 2-4 base pairs of U29C may not form under a stretching force at pH 7.3, which is consistent with the fact that the bottom base pairs of the hairpins may be disrupted by ribosome at the slippery site. U22C and U25C have a similar frameshifting efficiency (∼1%), indicating that both unfolding and folding rates of an mRNA hairpin in a crowded environment may affect frameshifting. Our data indicate that mechanical (un)folding of RNA hairpins may mimic how mRNAs unfold and fold in the presence of translating ribosomes.

摘要

在接近生理 pH 的条件下,摆动 A·C 对可以质子化形成更稳定的摆动 A·C 对。在这里,我们构建了一个 RNA 发夹(rHP)和三个突变体,它们的一个 A-U 碱基对分别被替换为茎部顶端(靠近环,U22C)、中部(U25C)和底部(U29C)位置的 A·C 错配。我们使用光学镊子进行的单分子力学(未)折叠实验结果表明,A-U 到 A·C 碱基对替换的去稳定化效应以及质子化依赖性的机械稳定性增强是通过增加折叠速率、降低解折叠速率或两者兼而有之来实现的。我们的数据表明,质子化可能在明显的机械折叠过渡态形成时迅速发生。此外,我们通过无细胞翻译测定测量了发夹的核糖体 -1 移码效率。对于所研究的 mRNA 发夹,-1 移码效率与平衡时的机械解折叠力和约 15 pN 时的折叠速率相关。U29C 的移码效率与 rHP 相似(约 2%)。因此,在 pH 7.3 下,拉伸力可能不会使 U29C 的底部 2-4 个碱基对形成,这与发夹的底部碱基对可能在滑溜位点被核糖体破坏的事实一致。U22C 和 U25C 具有相似的移码效率(约 1%),这表明在拥挤的环境中,mRNA 发夹的解折叠和折叠速率都可能影响移码。我们的数据表明,RNA 发夹的力学(未)折叠可能模拟了在翻译核糖体存在的情况下 mRNAs 的展开和折叠方式。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验