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Nanomanipulation of Single RNA Molecules by Optical Tweezers

机译:用光镊子对单个RNA分子的纳米操纵

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摘要

A large portion of the human genome is transcribed but not translated. In this post genomic era, regulatory functions of RNA have been shown to be increasingly important. As RNA function often depends on its ability to adopt alternative structures, it is difficult to predict RNA three-dimensional structures directly from sequence. Single-molecule approaches show potentials to solve the problem of RNA structural polymorphism by monitoring molecular structures one molecule at a time. This work presents a method to precisely manipulate the folding and structure of single RNA molecules using optical tweezers. First, methods to synthesize molecules suitable for single-molecule mechanical work are described. Next, various calibration procedures to ensure the proper operations of the optical tweezers are discussed. Next, various experiments are explained. To demonstrate the utility of the technique, results of mechanically unfolding RNA hairpins and a single RNA kissing complex are used as evidence. In these examples, the nanomanipulation technique was used to study folding of each structural domain, including secondary and tertiary, independently. Lastly, the limitations and future applications of the method are discussed.
机译:人类基因组的很大一部分被转录但未被翻译。在这个后基因组时代,RNA的调节功能已变得越来越重要。由于RNA功能通常取决于其采用替代结构的能力,因此很难直接从序列中预测RNA三维结构。单分子方法显示了通过一次监测一个分子的分子结构来解决RNA结构多态性问题的潜力。这项工作提出了一种使用光镊精确控制单个RNA分子折叠和结构的方法。首先,描述了合成适合于单分子机械功的分子的方法。接下来,讨论各种校准程序以确保光镊的正确操作。接下来,说明各种实验。为了证明该技术的实用性,使用了机械展开RNA发夹和单个RNA接吻复合物的结果作为证据。在这些例子中,纳米操纵技术被用来独立地研究每个结构域的折叠,包括二级和三级。最后,讨论了该方法的局限性和未来的应用。

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