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用于 mRNA 递送的活细胞荧光标记的隐形荧光标记

Stealth Fluorescence Labeling for Live Microscopy Imaging of mRNA Delivery.

机构信息

Department of Chemistry and Chemical Engineering, Chemistry and Biochemistry, Chalmers University of Technology, SE-41296 Gothenburg, Sweden.

Medicinal Chemistry, Research and Early Development, Cardiovascular, Renal and Metabolism, BioPharmaceuticals R&D, AstraZeneca, Gothenburg, Sweden.

出版信息

J Am Chem Soc. 2021 Apr 14;143(14):5413-5424. doi: 10.1021/jacs.1c00014. Epub 2021 Apr 2.

Abstract

Methods for tracking RNA inside living cells without perturbing their natural interactions and functions are critical within biology and, in particular, to facilitate studies of therapeutic RNA delivery. We present a stealth labeling approach that can efficiently, and with high fidelity, generate RNA transcripts, through enzymatic incorporation of the triphosphate of tC, a fluorescent tricyclic cytosine analogue. We demonstrate this by incorporation of tC in up to 100% of the natural cytosine positions of a 1.2 kb mRNA encoding for the histone H2B fused to GFP (H2B:GFP). Spectroscopic characterization of this mRNA shows that the incorporation rate of tC is similar to cytosine, which allows for efficient labeling and controlled tuning of labeling ratios for different applications. Using live cell confocal microscopy and flow cytometry, we show that the tC-labeled mRNA is efficiently translated into H2B:GFP inside human cells. Hence, we not only develop the use of fluorescent base analogue labeling of nucleic acids in live-cell microscopy but also, importantly, show that the resulting transcript is translated into the correct protein. Moreover, the spectral properties of our transcripts and their translation product allow for their straightforward, simultaneous visualization in live cells. Finally, we find that chemically transfected tC-labeled RNA, unlike a state-of-the-art fluorescently labeled RNA, gives rise to expression of a similar amount of protein as its natural counterpart, hence representing a methodology for studying natural, unperturbed processing of mRNA used in RNA therapeutics and in vaccines, like the ones developed against SARS-CoV-2.

摘要

在生物学中,特别是在促进治疗性 RNA 递送研究方面,不干扰其天然相互作用和功能而在活细胞内追踪 RNA 的方法至关重要。我们提出了一种隐身标记方法,可通过酶促掺入三磷酸 tC(一种荧光三环胞嘧啶类似物),高效且高保真地生成 RNA 转录物。我们通过将 tC 掺入到编码与 GFP 融合的组蛋白 H2B 的 1.2kb mRNA 的天然胞嘧啶位置中的高达 100%来证明这一点(H2B: GFP)。对该 mRNA 的光谱特性分析表明,tC 的掺入率与胞嘧啶相似,这允许针对不同应用进行高效标记和受控调节标记比。通过使用活细胞共焦显微镜和流式细胞术,我们证明了 tC 标记的 mRNA 可在人细胞内有效地翻译成 H2B: GFP。因此,我们不仅在活细胞显微镜中开发了使用荧光碱基类似物标记核酸的用途,而且重要的是,证明了所得转录物被翻译成正确的蛋白质。此外,我们的转录物及其翻译产物的光谱特性允许它们在活细胞中直接同时可视化。最后,我们发现化学转染的 tC 标记 RNA 与一种最先进的荧光标记 RNA 不同,它产生的蛋白质表达量与其天然对应物相似,因此代表了一种研究用于 RNA 治疗和疫苗的天然、未受干扰的 mRNA 处理的方法,例如针对 SARS-CoV-2 开发的疫苗。

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