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长 RNA 的荧光末端标记和单分子 FRET-TIRF 显微镜包封。

Fluorescent End-Labeling and Encapsulation of Long RNAs for Single-Molecule FRET-TIRF Microscopy.

机构信息

Department of Chemistry, University of Zurich.

Department of Chemistry, University of Zurich;

出版信息

J Vis Exp. 2024 Oct 18(212). doi: 10.3791/67391.

Abstract

Single-molecule Förster Resonance Energy Transfer (smFRET) excels in studying dynamic biomolecules by allowing precise observation of their conformational changes over time. To monitor RNA dynamics with smFRET, we developed a method to covalently label RNAs at their termini with a FRET pair of fluorophores. This direct end-labeling strategy targets the 5'-phosphate by carbodiimide (EDC)/N-hydroxysuccinimide (NHS) activation and the 3'-ribose by periodate oxidation, which can be adapted to other RNAs regardless of their size and sequence to study them independently of artificial modifications. Furthermore, the 5'-EDC/NHS activation is of general interest to all nucleic acids with a 5'-phosphate. The use of commercially available chemicals eliminates the need to synthesize RNA-specific probes. Total Internal Reflection Fluorescence (TIRF) microscopy requires the surface-immobilized molecules of interest to be within the evanescent field to be illuminated. A sophisticated way of keeping the RNA molecules within the evanescent field is to encapsulate them in phospholipid vesicles. Encapsulation benefits from the best of both worlds, tethering the molecule to the surface while enabling free diffusion of the molecule. We ensure that each vesicle contains only a single RNA molecule, enabling single-molecule imaging. Upon dual-end labeling and encapsulation of the RNA of interest, smFRET measurements offer a dynamic and detailed view of RNA behavior.

摘要

单分子Förster 共振能量转移 (smFRET) 通过精确观察生物分子随时间的构象变化,在研究动态生物分子方面表现出色。为了用 smFRET 监测 RNA 的动态,我们开发了一种将 RNA 的末端用荧光团对进行共价标记的方法。这种直接的末端标记策略通过碳二亚胺 (EDC)/N-羟基琥珀酰亚胺 (NHS) 激活靶向 5'-磷酸基团,通过过碘酸盐氧化靶向 3'-核糖,无论 RNA 的大小和序列如何,都可以将其应用于其他 RNA,从而独立于人工修饰对其进行研究。此外,5'-EDC/NHS 激活对所有带有 5'-磷酸基团的核酸都具有普遍意义。使用市售化学品消除了合成特定于 RNA 的探针的需要。全内反射荧光 (TIRF) 显微镜要求表面固定的感兴趣分子位于消逝场中才能被照亮。一种将 RNA 分子保持在消逝场中的复杂方法是将它们封装在磷脂囊泡中。封装从两个方面都受益,将分子固定在表面上,同时允许分子自由扩散。我们确保每个囊泡只包含一个 RNA 分子,从而能够进行单分子成像。对感兴趣的 RNA 进行双末端标记和封装后,smFRET 测量提供了 RNA 行为的动态和详细视图。

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