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A novel route for preparing 5′ cap mimics and capped RNAs: phosphate-modified cap analogues obtained via click chemistry

机译:制备5帽模拟物和带帽RNA的新途径:通过点击化学获得的磷酸修饰的帽类似物

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摘要

The significant biological role of the mRNA 5′ cap in translation initiation makes it an interesting subject for chemical modifications aimed at producing useful tools for the selective modulation of intercellular processes and development of novel therapeutic interventions. However, traditional approaches to the chemical synthesis of cap analogues are time-consuming and labour-intensive, which impedes the development of novel compounds and their applications. Here, we explore a different approach for synthesizing 5′ cap mimics, making use of click chemistry (CuAAC) to combine two mononucleotide units and yield a novel class of dinucleotide cap analogues containing a triazole ring within the oligophosphate chain. As a result, we synthesized a library of 36 mRNA cap analogues differing in the location of the triazole ring, the polyphosphate chain length, and the type of linkers joining the phosphate and the triazole moieties. After biochemical evaluation, we identified two analogues that, when incorporated into mRNA, produced transcripts translated with efficiency similar to compounds unmodified in the oligophosphate bridge obtained by traditional synthesis. Moreover, we demonstrated that the triazole-modified cap structures can be generated at the RNA 5′ end using two alternative capping strategies: either the typical co-transcriptional approach, or a new post-transcriptional approach based on CuAAC. Our findings open new possibilities for developing chemically modified mRNAs for research and therapeutic applications, including RNA-based vaccinations.
机译:mRNA 5'帽在翻译起始中的重要生物学作用使其成为化学修饰的一个有趣主题,旨在产生有用的工具来选择性调节细胞间过程和开发新的治疗性干预措施。然而,帽类似物化学合成的传统方法既费时又费力,这阻碍了新型化合物及其应用的发展。在这里,我们探索了一种不同的方法来合成5'帽模拟,利用点击化学(CuAAC)结合两个单核苷酸单元,并产生一类新的二核苷酸帽类似物,在寡磷酸盐链中包含一个三唑环。结果,我们合成了一个36个mRNA帽类似物的文库,该文库在三唑环的位置,多磷酸盐链长以及连接磷酸盐和三唑部分的接头类型上有所不同。经过生化评估后,我们鉴定了两个类似物,将其整合到mRNA中后,产生的转录本的翻译效率与传统合成方法所获得的寡磷酸盐桥中未修饰的化合物相似。此外,我们证明了可以使用两种替代的加帽策略在RNA 5'末端生成三唑修饰的帽结构:典型的共转录方法或基于CuAAC的新的转录后方法。我们的发现为开发用于研究和治疗应用(包括基于RNA的疫苗)的化学修饰的mRNA提供了新的可能性。

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