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传染病研究中RNA修饰的过去、现在与未来

Past, Present, and Future of RNA Modifications in Infectious Disease Research.

作者信息

Pan Xiaoqing, Bruch Alexander, Blango Matthew G

机构信息

Junior Research Group RNA Biology of Fungal Infections, Leibniz Institute for Natural Product Research and Infection Biology: Hans Knöll Institute (HKI), 07745 Jena, Germany.

出版信息

ACS Infect Dis. 2024 Dec 13;10(12):4017-4029. doi: 10.1021/acsinfecdis.4c00598. Epub 2024 Nov 21.

DOI:10.1021/acsinfecdis.4c00598
PMID:39569943
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11651297/
Abstract

In early 2024, the National Academies of Sciences, Engineering, and Medicine (NASEM) released a roadmap for the future of research into mapping ribonucleic acid (RNA) modifications, which underscored the importance of better defining these diverse chemical changes to the RNA macromolecule. As nearly all mature RNA molecules harbor some form of modification, we must understand RNA modifications to fully appreciate the functionality of RNA. The NASEM report calls for massive mobilization of resources and investment akin to the transformative Human Genome Project of the early 1990s. Like the Human Genome Project, a concerted effort in improving our ability to assess every single modification on every single RNA molecule in an organism will change the way we approach biological questions, accelerate technological advance, and improve our understanding of the molecular world. Consequently, we are also at the start of a revolution in defining the impact of RNA modifications in the context of host-microbe and even microbe-microbe interactions. In this perspective, we briefly introduce RNA modifications to the infection biologist, highlight key aspects of the NASEM report and exciting examples of RNA modifications contributing to host and pathogen biology, and finally postulate where infectious disease research may benefit from this exciting new endeavor in globally mapping RNA modifications.

摘要

2024年初,美国国家科学院、工程院和医学院(NASEM)发布了一份关于绘制核糖核酸(RNA)修饰图谱的未来研究路线图,该路线图强调了更好地定义RNA大分子这些多样化学变化的重要性。由于几乎所有成熟的RNA分子都带有某种形式的修饰,我们必须了解RNA修饰才能充分认识RNA的功能。NASEM的报告呼吁大规模调动资源并进行投资,这类似于20世纪90年代具有变革性的人类基因组计划。与人类基因组计划一样,齐心协力提高我们评估生物体中每个RNA分子上每一种修饰的能力,将改变我们处理生物学问题的方式,加速技术进步,并增进我们对分子世界的理解。因此,我们也正处于一场革命的开端,这场革命旨在确定RNA修饰在宿主 - 微生物甚至微生物 - 微生物相互作用背景下的影响。从这个角度出发,我们向感染生物学家简要介绍RNA修饰,突出NASEM报告的关键要点以及RNA修饰对宿主和病原体生物学有贡献的精彩实例,最后推测传染病研究可能从全球绘制RNA修饰这一令人兴奋的新努力中受益的领域。

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