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小分子单体翠雀花荧光 RNA 的结构基础,其斯托克斯位移较大。

Structural basis of a small monomeric Clivia fluorogenic RNA with a large Stokes shift.

机构信息

Department of Cardiology, The Second Affiliated Hospital of School of Medicine, Zhejiang University, Hangzhou, China.

Life Sciences Institute, Zhejiang University, Hangzhou, China.

出版信息

Nat Chem Biol. 2024 Nov;20(11):1453-1460. doi: 10.1038/s41589-024-01633-1. Epub 2024 May 30.

Abstract

RNA-based fluorogenic modules have revolutionized the spatiotemporal localization of RNA molecules. Recently, a fluorophore named 5-((Z)-4-((2-hydroxyethyl)(methyl)amino)benzylidene)-3-methyl-2-((E)-styryl)-3,5-dihydro-4H-imidazol-4-one (NBSI), emitting in red spectrum, and its cognate aptamer named Clivia were identified, exhibiting a large Stokes shift. To explore the underlying molecular basis of this unique RNA-fluorophore complex, we determined the tertiary structure of Clivia-NBSI. The overall structure uses a monomeric, non-G-quadruplex compact coaxial architecture, with NBSI sandwiched at the core junction. Structure-based fluorophore recognition pattern analysis, combined with fluorescence assays, enables the orthogonal use of Clivia-NBSI and other fluorogenic aptamers, paving the way for both dual-emission fluorescence and bioluminescence imaging of RNA molecules within living cells. Furthermore, on the basis of the structure-based substitution assay, we developed a multivalent Clivia fluorogenic aptamer containing multiple minimal NBSI-binding modules. This innovative design notably enhances the recognition sensitivity of fluorophores both in vitro and in vivo, shedding light on future efficient applications in various biomedical and research contexts.

摘要

基于 RNA 的荧光模块极大地推动了 RNA 分子的时空定位。最近,发现了一种名为 5-((Z)-4-((2-羟乙基)(甲基)氨基)苯亚甲基)-3-甲基-2-((E)-苯乙烯基)-3,5-二氢-4H-咪唑-4-酮(NBSI)的荧光团,它在红光光谱中发射,并且与其同源适体 Clivia 被鉴定出来,表现出较大的斯托克斯位移。为了探索这种独特的 RNA-荧光团复合物的潜在分子基础,我们确定了 Clivia-NBSI 的三级结构。整体结构采用单体、非 G-四链体紧凑共轴架构,NBSI 夹在核心连接处。基于结构的荧光团识别模式分析,结合荧光测定法,实现了 Clivia-NBSI 和其他荧光适体的正交使用,为活细胞内 RNA 分子的双发射荧光和生物发光成像铺平了道路。此外,基于结构的取代测定,我们开发了一种多价 Clivia 荧光适体,包含多个最小的 NBSI 结合模块。这种创新设计显著提高了荧光团在体外和体内的识别灵敏度,为未来在各种生物医学和研究领域的高效应用提供了思路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b54d/11511665/aca54817c7a6/41589_2024_1633_Fig1_HTML.jpg

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