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非经典帽的神秘世界——我们所知道的以及我们为何需要新的测序技术

The Mysterious World of Non-Canonical Caps - What We Know and Why We Need New Sequencing Techniques.

作者信息

Mancini Flaminia, Cahova Hana

机构信息

Chemical Biology of Nucleic Acids, Institute of Organic Chemistry and Biochemistry of the CAS, Flemingovo náměstí 2, Prague 6, Czech Republic.

Charles University, Faculty of Science, Department of Cell Biology, Vinicna 7, Prague 2, Czech Republic.

出版信息

Chembiochem. 2025 Feb 1;26(3):e202400604. doi: 10.1002/cbic.202400604. Epub 2024 Oct 27.

Abstract

It was long believed that viral and eukaryotic mRNA molecules are capped at their 5' end solely by the N-methylguanosine cap, which regulates various aspects of the RNA life cycle, from its biogenesis to its decay. However, the recent discovery of a variety of non-canonical RNA caps derived from metabolites and cofactors - such as NAD, FAD, CoA, UDP-glucose, UDP-N-acetylglucosamine, and dinucleoside polyphosphates - has expanded the known repertoire of RNA modifications. These non-canonical caps are found across all domains of life and can impact multiple aspects of RNA metabolism, including stability, translation initiation, and cellular stress responses. The study of these modifications has been facilitated by sophisticated methodologies such as liquid chromatography-mass spectrometry, which have unveiled their presence in both prokaryotic and eukaryotic organisms. The identification of these novel RNA caps highlights the need for advanced sequencing techniques to characterize the specific RNA types bearing these modifications and understand their roles in cellular processes. Unravelling the biological role of non-canonical RNA caps will provide insights into their contributions to gene expression, cellular adaptation, and evolutionary diversity. This review emphasizes the importance of these technological advancements in uncovering the complete spectrum of RNA modifications and their implications for living systems.

摘要

长期以来,人们一直认为病毒和真核生物的mRNA分子仅在其5'端被N-甲基鸟苷帽修饰,该修饰调节RNA生命周期的各个方面,从其生物发生到其衰变。然而,最近发现了多种源自代谢物和辅因子的非规范RNA帽,如NAD、FAD、CoA、UDP-葡萄糖、UDP-N-乙酰葡糖胺和二核苷多磷酸,这扩展了已知的RNA修饰种类。这些非规范帽存在于所有生命领域,并可影响RNA代谢的多个方面,包括稳定性、翻译起始和细胞应激反应。液相色谱-质谱等复杂方法促进了对这些修饰的研究,这些方法揭示了它们在原核生物和真核生物中的存在。这些新型RNA帽的鉴定凸显了先进测序技术的必要性,以表征携带这些修饰的特定RNA类型,并了解它们在细胞过程中的作用。阐明非规范RNA帽的生物学作用将为它们对基因表达、细胞适应和进化多样性的贡献提供见解。本综述强调了这些技术进步在揭示RNA修饰的完整范围及其对生命系统的影响方面的重要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e586/11823360/10f99fb4632f/CBIC-26-e202400604-g009.jpg

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