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通过新型顺式剪接系统实现蛋白质编码 RNA 的高效环化。

Efficient circularization of protein-encoding RNAs via a novel cis-splicing system.

机构信息

Department of mRNA Sciences, Suzhou Abogen Biosciences Co., Ltd., Suzhou 215123, China.

出版信息

Nucleic Acids Res. 2024 Sep 23;52(17):10400-10415. doi: 10.1093/nar/gkae711.

Abstract

Circular RNAs (circRNAs) have emerged as a promising alternative to linear mRNA, owing to their unique properties and potential therapeutic applications, driving the development of novel approaches for their production. This study introduces a cis-splicing system that efficiently produces circRNAs by incorporating a ribozyme core at one end of the precursor, thereby eliminating the need for additional spacer elements between the ribozyme and the gene of interest (GOI). In this cis-splicing system, sequences resembling homologous arms at both ends of the precursor are crucial for forming the P9.0 duplex, which in turn facilitates effective self-splicing and circularization. We demonstrate that the precise recognition of the second transesterification site depends more on the structural characteristics of P9.0 adjacent to the ωG position than on the nucleotide composition of the P9.0-ωG itself. Further optimization of structural elements, like P10 and P1-ex, significantly improves circularization efficiency. The circRNAs generated through the cis-splicing system exhibit prolonged protein expression and minimal activation of the innate immune response. This study provides a comprehensive exploration of circRNA generation via a novel strategy and offers valuable insights into the structural engineering of RNA, paving the way for future advancements in circRNA-based applications.

摘要

环状 RNA(circRNAs)因其独特的性质和潜在的治疗应用而成为线性 mRNA 的一种有前途的替代物,推动了其生产的新方法的发展。本研究介绍了一种顺式剪接系统,该系统通过在前体的一端掺入核酶核心,有效地产生 circRNAs,从而消除了核酶和感兴趣基因(GOI)之间额外的间隔元件的需要。在这个顺式剪接系统中,前体两端类似于同源臂的序列对于形成 P9.0 双链体至关重要,这反过来又促进了有效的自我剪接和环化。我们证明,第二个转酯化位点的精确识别更多地取决于与 ωG 位置相邻的 P9.0 的结构特征,而不是 P9.0-ωG 本身的核苷酸组成。对结构元件(如 P10 和 P1-ex)的进一步优化显著提高了环化效率。通过顺式剪接系统产生的 circRNAs 表现出延长的蛋白质表达和最小化的先天免疫反应激活。本研究通过一种新策略全面探索了 circRNA 的产生,并为 RNA 的结构工程提供了有价值的见解,为基于 circRNA 的应用的未来进展铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d11e/11417360/945c592b2551/gkae711figgra1.jpg

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