生物正交化学
核糖核酸
化学
功能(生物学)
叠氮化物
施陶丁格反应
DNA
生物化学
核糖开关
核酸结构
组合化学
合成生物学
反应性(心理学)
化学合成
体外
计算生物学
试剂
核酶
化学生物学
双功能
基因
非编码RNA
核酸
基因表达
突变
作者
Li Zhu,Wei Xiong,Silin Yang,Qianqian Qi,Xingyu Liu,Xiang Zhou,Tian Tian
标识
DOI:10.1021/acschembio.6c00067
摘要
Here, we report a reversible chemical strategy for regulating RNA function through a Staudinger reaction-mediated postsynthetic modification. We designed a bifunctional azide reagent, 1,3-diazidopropan-2-yl 1H-imidazol-1-carboxylate (DAPIC), which specifically modifies the 2'-hydroxyl of RNA, thereby disrupting RNA structure and function. Treatment with 2-diphenylphosphinoethylamine (DPPEA) reactivates the modified RNA through an efficient Staudinger reduction. This approach enables reversible modulation of RNA folding, hybridization, and protein-binding interactions, and can be applied to guide RNAs in the CRISPR-Cas9 system. DAPIC modification completely abrogates Cas9-mediated DNA cleavage, which is restored in a DPPEA concentration-dependent manner both in vitro and in living cells. Compared with monoazide derivatives, DAPIC exhibits enhanced reactivity and reduced reagent requirements. This Staudinger-based RNA regulation platform establishes a robust and generalizable chemical tool for conditional gene editing and studies of RNA function in complex biological environments.
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