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一种 RNA 折纸机器人,可捕获并释放荧光适体。

An RNA origami robot that traps and releases a fluorescent aptamer.

机构信息

Interdisciplinary Nanoscience Center, Aarhus University, Aarhus, Denmark.

Center for RNA Therapeutics, Department of Cardiovascular Sciences, Houston Methodist Research Institute, 6670 Bertner Ave, R10-117, Houston, TX 77030, USA.

出版信息

Sci Adv. 2024 Mar 22;10(12):eadk1250. doi: 10.1126/sciadv.adk1250. Epub 2024 Mar 20.

Abstract

RNA nanotechnology aims to use RNA as a programmable material to create self-assembling nanodevices for application in medicine and synthetic biology. The main challenge is to develop advanced RNA robotic devices that both sense, compute, and actuate to obtain enhanced control over molecular processes. Here, we use the RNA origami method to prototype an RNA robotic device, named the "Traptamer," that mechanically traps the fluorescent aptamer, iSpinach. The Traptamer is shown to sense two RNA key strands, acts as a Boolean AND gate, and reversibly controls the fluorescence of the iSpinach aptamer. Cryo-electron microscopy of the closed Traptamer structure at 5.45-angstrom resolution reveals the mechanical mode of distortion of the iSpinach motif. Our study suggests a general approach to distorting RNA motifs and a path forward to build sophisticated RNA machines that through sensing, computing, and actuation modules can be used to precisely control RNA functionalities in cellular systems.

摘要

RNA 纳米技术旨在利用 RNA 作为可编程材料,用于制造自组装纳米器件,以应用于医学和合成生物学领域。主要挑战在于开发先进的 RNA 机器人设备,使其能够感知、计算和驱动,从而增强对分子过程的控制。在这里,我们使用 RNA 折纸方法来对一种 RNA 机器人设备进行原型设计,名为“Traptamer”,它可以机械地捕获荧光适体 iSpinach。研究表明,Traptamer 可以感知两个 RNA 关键链,充当布尔“与”门,并可逆地控制 iSpinach 适体的荧光。在 5.45 埃分辨率下对封闭的 Traptamer 结构进行低温电子显微镜观察,揭示了 iSpinach 基序的机械变形模式。我们的研究提出了一种用于扭曲 RNA 基序的通用方法,并为构建复杂的 RNA 机器铺平了道路,这些机器可以通过传感、计算和驱动模块,用于在细胞系统中精确控制 RNA 功能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/97a9/10954211/b8a467e0a1f3/sciadv.adk1250-f1.jpg

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