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Enzymatic Synthesis of RNAs Capped with Nucleotide Analogues Reveals the Molecular Basis for Substrate Selectivity of RNA Capping Enzyme: Impacts on RNA Metabolism

机译:核苷酸合成物封端的RNA的酶促合成揭示了RNA封端酶的底物选择性的分子基础:对RNA代谢的影响。

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摘要

RNA cap binding proteins have evolved to specifically bind to the N7-methyl guanosine cap structure found at the 5’ ends of eukaryotic mRNAs. The specificity of RNA capping enzymes towards GTP for the synthesis of this structure is therefore crucial for mRNA metabolism. The fact that ribavirin triphosphate was described as a substrate of a viral RNA capping enzyme, raised the possibility that RNAs capped with nucleotide analogues could be generated in cellulo. Owing to the fact that this prospect potentially has wide pharmacological implications, we decided to investigate whether the active site of the model Paramecium bursaria Chlorella virus-1 RNA capping enzyme was flexible enough to accommodate various purine analogues. Using this approach, we identified several key structural determinants at each step of the RNA capping reaction and generated RNAs harboring various different cap analogues. Moreover, we monitored the binding affinity of these novel capped RNAs to the eIF4E protein and evaluated their translational properties in cellulo. Overall, this study establishes a molecular rationale for the specific selection of GTP over other NTPs by RNA capping enzyme It also demonstrates that RNAs can be enzymatically capped with certain purine nucleotide analogs, and it also describes the impacts of modified RNA caps on specific steps involved in mRNA metabolism. For instance, our results indicate that the N7-methyl group of the classical N7-methyl guanosine cap is not always indispensable for binding to eIF4E and subsequently for translation when compensatory modifications are present on the capped residue. Overall, these findings have important implications for our understanding of the molecular determinants involved in both RNA capping and RNA metabolism.
机译:RNA帽结合蛋白已经进化为与真核mRNA 5'端的N7-甲基鸟苷帽结构特异性结合。因此,RNA封端酶对GTP合成这种结构的特异性对于mRNA代谢至关重要。利巴韦林三磷酸被描述为病毒RNA封端酶的底物,这一事实提高了在纤维素中生成被核苷酸类似物封端的RNA的可能性。由于这一前景可能具有广泛的药理学意义,我们决定调查模型草履虫小球藻小球藻病毒1 RNA封端酶的活性位点是否足够灵活以容纳各种嘌呤类似物。使用这种方法,我们在RNA封端反应的每个步骤中确定了几个关键的结构决定因素,并生成了具有各种不同封端类似物的RNA。此外,我们监测了这些新型带帽RNA与eIF4E蛋白的结合亲和力,并评估了它们在纤维素中的翻译特性。总体而言,这项研究为通过RNA封端酶比其他NTP特异性选择GTP建立了分子原理。它还证明了RNA可以被某些嘌呤核苷酸类似物酶促封端,并且还描述了修饰的RNA封端对涉及的特定步骤的影响在mRNA代谢中。例如,我们的结果表明,经典的N7-甲基鸟苷帽的N7-甲基对于与eIF4E的结合以及随后在被修饰的残基上存在补偿性修饰后的翻译并非总是必不可少的。总体而言,这些发现对我们对参与RNA上限和RNA代谢的分子决定因素的理解具有重要意义。

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