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Next-level riboswitch development-implementation of Capture-SELEX facilitates identification of a new synthetic riboswitch

机译:下一级Riboswitch开发 - 捕获Selex的实施有助于识别新的合成核电图

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摘要

The development of synthetic riboswitches has always been a challenge. Although a number of interesting proof-of-concept studies have been published, almost all of these were performed with the theophylline aptamer. There is no shortage of small molecule-binding aptamers; however, only a small fraction of them are suitable for RNA engineering since a classical SELEX protocol selects only for high-affinity binding but not for conformational switching. We now implemented RNA Capture-SELEX in our riboswitch developmental pipeline to integrate the required selection for high-affinity binding with the equally necessary RNA conformational switching. Thus, we successfully developed a new paromomycin-binding synthetic riboswitch. It binds paromomycin with a KD of 20 nM and can discriminate between closely related molecules both in vitro and in vivo. A detailed structure-function analysis confirmed the predicted secondary structure and identified nucleotides involved in ligand binding. The riboswitch was further engineered in combination with the neomycin riboswitch for the assembly of an orthogonal Boolean NOR logic gate. In sum, our work not only broadens the spectrum of existing RNA regulators, but also signifies a breakthrough in riboswitch development, as the effort required for the design of sensor domains for RNA-based devices will in many cases be much reduced.
机译:合成核糖开关的发展始终是一个挑战。尽管一些证据的概念有趣的研究已经发表,几乎所有这些都与茶碱适体进行。没有小分子结合适体的短缺;然而,其中只有一小部分是适合于RNA工程因为只有高亲和力结合,但不为构象切换的经典SELEX协议选择。我们现在在我们的核糖开关发育管道输送到需要选择集成的高亲和力与同样必要的RNA构象开关结合实施RNA捕获-SELEX。因此,我们成功地开发了新的巴龙霉素结合合成核糖开关。它结合巴龙霉素用20nM的K D,并且可以在体外和体内密切相关的分子之间进行区分。的详细结构 - 功能分析证实了预测的二级结构和参与配体结合鉴定的核苷酸。核糖开关组合物进一步工程与用于正交布尔NOR逻辑门的组件的新霉素核糖开关。总之,我们的工作不仅拓宽现有的RNA监管机构的频谱,也标志着在核糖发展的突破口,作为传感器域的设计基于RNA的设备所需的努力将在许多情况下大大降低。

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  • 来源
    《Nucleic Acids Research》 |2019年第9期|共13页
  • 作者单位

    Tech Univ Darmstadt Dept Biol Schnittspahnstr 10 D-64287 Darmstadt Germany;

    Tech Univ Darmstadt Dept Biol Schnittspahnstr 10 D-64287 Darmstadt Germany;

    Tech Univ Darmstadt Dept Biol Schnittspahnstr 10 D-64287 Darmstadt Germany;

    Tech Univ Darmstadt Dept Biol Schnittspahnstr 10 D-64287 Darmstadt Germany;

    Tech Univ Darmstadt Dept Biol Schnittspahnstr 10 D-64287 Darmstadt Germany;

    Tech Univ Darmstadt Dept Biol Computat Biol &

    Simulat D-64287 Darmstadt Germany;

    Tech Univ Darmstadt Dept Biol Schnittspahnstr 10 D-64287 Darmstadt Germany;

    Tech Univ Darmstadt Dept Biol Computat Biol &

    Simulat D-64287 Darmstadt Germany;

    Tech Univ Darmstadt Dept Biol Schnittspahnstr 10 D-64287 Darmstadt Germany;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物化学;
  • 关键词

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