电路逻辑:相互依赖的RNA修饰形成mRNA和非编码RNA的结构和功能。

IF 4.2 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
RNA Pub Date : 2025-04-16 DOI:10.1261/rna.080421.125
Jennifer Porat
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引用次数: 0

摘要

在转录后RNA修饰的高通量检测方面的持续进步,使得对RNA修饰在调节编码和非编码RNA的结构、功能和稳定性方面的重要性的大规模机制研究成为可能。最近,这已经扩展到独立单修饰的研究之外,揭示了单转录物中修饰复杂性的广度以及导致协调修饰RNA物种的生物发生途径。这导致了修饰回路的概念,其中一个修饰可以促进或抑制其他修饰的后续安装,或者当修饰在不同的RNA物种之间协调时。这些回路在多步转录后修饰的生物发生中发挥重要作用,调节核糖核蛋白复合物的形成和构象开关,并通过mRNA和tRNA修饰的协调介导密码子偏向翻译。在这里,我回顾了mRNA和非编码RNA中复杂修饰回路的证据,并强调了有关修饰回路产生的分子机制及其在RNA加工和成熟过程中的重要性的开放性问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Circuit logic: interdependent RNA modifications shape mRNA and noncoding RNA structure and function.

Continued advances in high-throughput detection of posttranscriptional RNA modifications have enabled large-scale, mechanistic studies into the importance of RNA modifications in regulating the structure, function, and stability of coding and noncoding RNAs. More recently, this has expanded beyond investigations of independent single modifications, revealing the breadth of modification complexities in single transcripts and the biogenesis pathways involved that lead to coordinately modified RNA species. This has resulted in the concept of modification circuits, where one modification can promote or inhibit the subsequent installation of other modifications, or when modifications are coordinated across different RNA species. These circuits play important roles in the biogenesis of multistepped posttranscriptional modifications, modulate ribonucleoprotein complex formation and conformational switches, and mediate codon-biased translation through the coordination of mRNA and tRNA modifications. Here, I review evidence of complex modification circuits in mRNA and noncoding RNA and highlight open questions concerning the molecular mechanisms giving rise to modification circuits and their importance in the context of RNA processing and maturation.

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来源期刊
RNA
RNA 生物-生化与分子生物学
CiteScore
8.30
自引率
2.20%
发文量
101
审稿时长
2.6 months
期刊介绍: RNA is a monthly journal which provides rapid publication of significant original research in all areas of RNA structure and function in eukaryotic, prokaryotic, and viral systems. It covers a broad range of subjects in RNA research, including: structural analysis by biochemical or biophysical means; mRNA structure, function and biogenesis; alternative processing: cis-acting elements and trans-acting factors; ribosome structure and function; translational control; RNA catalysis; tRNA structure, function, biogenesis and identity; RNA editing; rRNA structure, function and biogenesis; RNA transport and localization; regulatory RNAs; large and small RNP structure, function and biogenesis; viral RNA metabolism; RNA stability and turnover; in vitro evolution; and RNA chemistry.
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