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碱基修饰重塑了合成RNA和天然RNA的折叠景观以及结构-功能关系。

Base modifications reshape RNA folding landscapes and structure-function relationships in synthetic and natural RNAs.

作者信息

McRae Ewan, Yadav Deepak, Yang Haoyun, Lee Sukyeong

机构信息

Houston Methodist Research Institute.

Baylor College of Medicine.

出版信息

Res Sq. 2025 May 29:rs.3.rs-6465433. doi: 10.21203/rs.3.rs-6465433/v1.

Abstract

Modified bases such as 5-methylcytosine (5mC) and N1-methyl-pseudouridine (N1Ψ) are widely used to reduce the immunogenicity of and enhance the stability and translational efficiency of therapeutic RNAs, yet their effects on RNA 3D structure remain poorly understood. Here, we investigate how these base modifications influence the folding and function of structured RNAs using both an engineered RNA origami nanostructure and a naturally occurring ribozyme. We show that modified bases impair kinetic maturation of RNA nanostructures and promote alternative folding topologies via stabilization of noncanonical stacking arrangements. Cryo-EM and FRET experiments reveal that this conformational shift is driven not by changes in base pairing, but by altered stacking energetics at key junctions. Our findings highlight the need to consider structural consequences when using base modifications and offer design principles for the development of functional, structured RNAs in synthetic biology and therapeutic applications.

摘要

诸如5-甲基胞嘧啶(5mC)和N1-甲基假尿苷(N1Ψ)等修饰碱基被广泛用于降低治疗性RNA的免疫原性,并提高其稳定性和翻译效率,然而它们对RNA三维结构的影响仍知之甚少。在这里,我们使用工程化的RNA折纸纳米结构和天然存在的核酶,研究这些碱基修饰如何影响结构化RNA的折叠和功能。我们发现修饰碱基会损害RNA纳米结构的动力学成熟,并通过稳定非经典堆积排列促进替代折叠拓扑。冷冻电镜和荧光共振能量转移实验表明,这种构象转变不是由碱基配对的变化驱动的,而是由关键连接处堆积能量的改变驱动的。我们的研究结果强调了在使用碱基修饰时需要考虑结构后果,并为合成生物学和治疗应用中功能性结构化RNA的开发提供了设计原则。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3076/12154146/ca13283cdad6/nihpp-rs6465433v1-f0001.jpg

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