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非规范代谢物 RNA 帽:分类、定量、(去)帽化和功能。

Noncanonical metabolite RNA caps: Classification, quantification, (de)capping, and function.

机构信息

Institute of Biochemistry, University of Münster, Münster, Germany.

出版信息

Wiley Interdiscip Rev RNA. 2022 Nov;13(6):e1730. doi: 10.1002/wrna.1730. Epub 2022 Jun 8.

Abstract

The 5' cap of eukaryotic mRNA is a hallmark for cellular functions from mRNA stability to translation. However, the discovery of novel 5'-terminal RNA caps derived from cellular metabolites has challenged this long-standing singularity in both eukaryotes and prokaryotes. Reminiscent of the 7-methylguanosine (m7G) cap structure, these noncanonical caps originate from abundant coenzymes such as NAD, FAD, or CoA and from metabolites like dinucleoside polyphosphates (NpnN). As of now, the significance of noncanonical RNA caps is elusive: they differ for individual transcripts, occur in distinct types of RNA, and change in response to environmental stimuli. A thorough comparison of their prevalence, quantity, and characteristics is indispensable to define the distinct classes of metabolite-capped RNAs. This is achieved by a structured analysis of all present studies covering functional, quantitative, and sequencing data which help to uncover their biological impact. The biosynthetic strategies of noncanonical RNA capping and the elaborate decapping machinery reveal the regulation and turnover of metabolite-capped RNAs. With noncanonical capping being a universal and ancient phenomenon, organisms have developed diverging strategies to adapt metabolite-derived caps to their metabolic needs, but ultimately to establish noncanonical RNA caps as another intriguing layer of RNA regulation. This article is categorized under: RNA Processing > Capping and 5' End Modifications RNA Turnover and Surveillance > Turnover/Surveillance Mechanisms RNA Turnover and Surveillance > Regulation of RNA Stability.

摘要

真核生物 mRNA 的 5'帽结构是 mRNA 稳定性到翻译等细胞功能的标志。然而,新型的、来源于细胞代谢物的 5'-端 RNA 帽的发现,挑战了真核生物和原核生物中这一长期存在的单一性。这些非典型的帽结构类似于 7-甲基鸟苷(m7G)帽结构,来源于丰富的辅酶,如 NAD、FAD 或 CoA,以及代谢物,如二核苷酸多磷酸(NpnN)。到目前为止,非典型 RNA 帽的意义还不清楚:它们因个别转录本而异,存在于不同类型的 RNA 中,并随环境刺激而变化。要定义不同类型的代谢物帽 RNA,必须对其普遍性、数量和特征进行彻底比较。这可以通过对涵盖功能、定量和测序数据的所有现有研究进行结构化分析来实现,这有助于揭示它们的生物学影响。非典型 RNA 加帽的生物合成策略和精细的脱帽机制揭示了代谢物帽 RNA 的调节和周转。由于非典型加帽是一种普遍而古老的现象,生物体已经发展出不同的策略来适应代谢物衍生的帽结构,以满足其代谢需求,但最终将非典型 RNA 帽作为 RNA 调节的另一个有趣层面建立起来。本文属于以下类别:RNA 加工 > 加帽和 5' 端修饰 RNA 周转和监控 > 周转/监控机制 RNA 周转和监控 > RNA 稳定性的调节。

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