RNA修饰在植物发育和果实成熟中的调控作用

IF 5 4区 农林科学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Tianxiang Li, Junmei Huang, Guanqun Wang, Haoxuan Li, Peitao Lü
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引用次数: 0

摘要

新兴的表观转录组学领域已经彻底改变了我们对植物系统转录后调控的理解。本文综述了RNA修饰领域的最新发现,特别强调了n6 -甲基腺苷(m6A)介导的调控植物发育和果实成熟的调控网络。我们系统地总结了RNA修饰的时空模式及其在植物激素信号级联反应和环境刺激反应中的整合。先进的表转录组测序平台已经确定了被子植物物种之间进化保守的修饰特征,同时揭示了物种特异性的调控结构。尽管取得了实质性进展,但我们对RNA修饰的分子机制,特别是m6A以外的分子机制的理解仍然有限。我们提出了一个创新的路线图,结合了基于crispr的写/擦除操作,单细胞空间表转录组学和合成生物学方法来利用RNA修饰网络进行精准农业。我们也强调跨学科合作的重要性,整合生物学、化学、物理学和计算机科学的发现来解码植物表观转录组。为了精确控制采后生理,未来的重点应该包括开发用于特定修饰类型的生物传感器,RNA修饰依赖的翻译控制系统的工程设计,以及RNA表观遗传编辑工具的开发。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Regulatory roles of RNA modifications in plant development and fruit ripening

The emerging field of epitranscriptomics has revolutionized our understanding of post-transcriptional regulation in plant systems. This review focuses on cutting-edge discoveries in the area of RNA modification, with a particular emphasis on the N6-methyladenosine (m6A)-mediated regulatory networks that govern plant development and fruit maturation. We systematically summarize the spatiotemporal patterns of RNA modifications and their integration into phytohormone signaling cascades and responses to environmental stimuli. Advanced epitranscriptome sequencing platforms have identified evolutionarily conserved modification signatures across angiosperm species, while simultaneously revealing species-specific regulatory architectures. Despite substantial progress, our understanding of the molecular mechanisms that underlie RNA modifications, especially those other than m6A, remains limited. We propose an innovative roadmap that combines CRISPR-based writer/eraser manipulation, single-cell spatial epitranscriptomics, and synthetic biology approaches to harness RNA modification networks for precision agriculture. We also underscore the importance of interdisciplinary collaboration that integrates findings from biology, chemistry, physics, and computer science to decode the plant epitranscriptome. To enable precise control of postharvest physiology, future priorities should include the development of biosensors for specific modification types, the engineering of RNA modification–dependent translation control systems, and the development of RNA epigenetic editing tools.

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来源期刊
CiteScore
7.70
自引率
2.80%
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