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Identification and in vitro characterization of UDP-GlcNAc-RNA cap-modifying and decapping enzymes

机译:UDP-GlcNAc-RNA 帽修饰和加帽酶的鉴定和体外表征

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摘要

In recent years, several noncanonical RNA caps derived from cofactors and metabolites have been identified. Purine-containing RNA caps have been extensively studied, with multiple decapping enzymes identified and efficient capture and sequencing protocols developed for nicotinamide adenine dinucleotide (NAD)-RNA, which allowed for a stepwise elucidation of capping functions. Despite being identified as an abundant noncanonical RNA-cap, UDP-sugar-capped RNA remains poorly understood, which is partly due to its complex in vitro preparation. Here, we describe a scalable synthesis of sugar-capped uridine-guanosine dinucleotides from readily available protected building blocks and their enzymatic conversion into several cell wall precursor-capped dinucleotides. We employed these capped dinucleotides in T7 RNA polymerase-catalyzed in vitro transcription reactions to efficiently generate RNAs capped with uridine diphosphate N-acetylglucosamine (UDP-GlcNAc), its N-azidoacetyl derivative UDP-GlcNAz, and various cell wall precursors. We furthermore identified four enzymes capable of processing UDP-GlcNAc-capped RNA in vitro: MurA, MurB and MurC from Escherichia coli can sequentially modify the sugar-cap structure and were used to introduce a bioorthogonal, clickable moiety, and the human Nudix hydrolase Nudt5 was shown to efficiently decap UDP-GlcNAc-RNA. Our findings underscore the importance of efficient synthetic methods for capped model RNAs. Additionally, we provide useful enzymatic tools that could be utilized in the development and application of UDP-GlcNAc capture and sequencing protocols. Such protocols are essential for deepening our understanding of the widespread yet enigmatic GlcNAc modification of RNA and its physiological significance.
机译:近年来,已经鉴定出几种来自辅因子和代谢物的非经典 RNA 帽。含嘌呤的 RNA 帽已被广泛研究,鉴定出多种脱帽酶,并为烟酰胺腺嘌呤二核苷酸 (NAD)-RNA 开发了高效的捕获和测序方案,从而可以逐步阐明加帽功能。尽管被确定为丰富的非经典 RNA 帽,但 UDP 糖帽 RNA 仍然知之甚少,这部分是由于其复杂的体外制备。在这里,我们描述了来自现成受保护构建单元的糖封端尿苷-鸟苷二核苷酸的可扩展合成,以及它们酶促转化为几种细胞壁前体封端的二核苷酸。我们在 T7 RNA 聚合酶催化的体外转录反应中使用这些加帽的二核苷酸,以有效地生成加帽的 RNA,这些 RNA 由尿苷二磷酸 N-乙酰氨基葡萄糖 (UDP-GlcNAc)、其 N-叠氮基乙酰衍生物 UDP-GlcNAz 和各种细胞壁前体封帽。我们进一步鉴定了四种能够在体外加工 UDP-GlcNAc 加帽 RNA 的酶:来自大肠杆菌的 MurA、MurB 和 MurC 可以依次修饰糖帽结构,并用于引入生物正交、可点击的部分,并且人 Nudix 水解酶 Nudt5 被证明可以有效地解帽 UDP-GlcNAc-RNA。我们的研究结果强调了加帽模型 RNA 的高效合成方法的重要性。此外,我们还提供了有用的酶工具,可用于 UDP-GlcNAc 捕获和测序方案的开发和应用。这些方案对于加深我们对 RNA 广泛而神秘的 GlcNAc 修饰及其生理意义的理解至关重要。

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