Li Lan, Han Jinghua, Lo Hei-Yong G, Tam Winnie Wai Ling, Jia Han, Tse Edmund Chun Ming, Taliaferro J Matthew, Li Ying
Department of Chemistry, The University of Hong Kong, Hong Kong 999077, China.
Department of Biochemistry and Molecular Genetics, RNA Bioscience Initiative, University of Colorado Anschutz Medical Campus, Aurora, CO 80045, USA.
Nucleic Acids Res. 2024 Apr 24;52(7):e36. doi: 10.1093/nar/gkae125.
Cellular RNA is asymmetrically distributed in cells and the regulation of RNA localization is crucial for proper cellular functions. However, limited chemical tools are available to capture dynamic RNA localization in complex biological systems with high spatiotemporal resolution. Here, we developed a new method for RNA proximity labeling activated by near-infrared (NIR) light, which holds the potential for deep penetration. Our method, termed FAP-seq, utilizes a genetically encoded fluorogen activating protein (FAP) that selectively binds to a set of substrates known as malachite green (MG). FAP binding restricts the rotation of MG and rapidly activates its fluorescence in a wash-free manner. By introducing a monoiodo modification to MG, we created a photosensitizer (MG-HI) with the highest singlet oxygen generation ability among various MG derivatives, enabling both protein and RNA proximity labeling in live cells. New insights are provided in the transcriptome analysis with FAP-seq, while a deeper understanding of the symmetry-breaking structural arrangement of FAP-MG-HI was obtained through molecular dynamics simulations. Overall, our wash-free and NIR light-inducible RNA proximity labeling method (FAP-seq) offers a powerful and versatile approach for investigating complex mechanisms underlying RNA-related biological processes.
细胞RNA在细胞中呈不对称分布,RNA定位的调控对于细胞正常功能至关重要。然而,用于在复杂生物系统中以高时空分辨率捕获动态RNA定位的化学工具有限。在此,我们开发了一种由近红外(NIR)光激活的RNA邻近标记新方法,该方法具有深度穿透的潜力。我们的方法称为FAP-seq,利用一种基因编码的荧光团激活蛋白(FAP),它能选择性地结合一组称为孔雀石绿(MG)的底物。FAP的结合限制了MG的旋转,并以无需洗涤的方式快速激活其荧光。通过对MG进行单碘修饰,我们创建了一种在各种MG衍生物中具有最高单线态氧生成能力的光敏剂(MG-HI),能够在活细胞中进行蛋白质和RNA邻近标记。FAP-seq在转录组分析中提供了新的见解,同时通过分子动力学模拟对FAP-MG-HI的对称性破缺结构排列有了更深入的了解。总体而言,我们的无需洗涤且近红外光诱导的RNA邻近标记方法(FAP-seq)为研究RNA相关生物过程背后的复杂机制提供了一种强大且通用的方法。