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Chemical and Conformational Diversity of Modified Nucleosides Affects tRNA Structure and Function

机译:修饰核苷的化学和构象多样性影响tRNA结构和功能

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摘要

RNAs are central to all gene expression through the control of protein synthesis. Four major nucleosides, adenosine, guanosine, cytidine and uridine, compose RNAs and provide sequence variation, but are limited in contributions to structural variation as well as distinct chemical properties. The ability of RNAs to play multiple roles in cellular metabolism is made possible by extensive variation in length, conformational dynamics, and the over 100 post-transcriptional modifications. There are several reviews of the biochemical pathways leading to RNA modification, but the physicochemical nature of modified nucleosides and how they facilitate RNA function is of keen interest, particularly with regard to the contributions of modified nucleosides. Transfer RNAs (tRNAs) are the most extensively modified RNAs. The diversity of modifications provide versatility to the chemical and structural environments. The added chemistry, conformation and dynamics of modified nucleosides occurring at the termini of stems in tRNA’s cloverleaf secondary structure affect the global three-dimensional conformation, produce unique recognition determinants for macromolecules to recognize tRNAs, and affect the accurate and efficient decoding ability of tRNAs. This review will discuss the impact of specific chemical moieties on the structure, stability, electrochemical properties, and function of tRNAs.
机译:通过控制蛋白质合成,RNA对所有基因表达至关重要。四种主要的核苷,腺苷,鸟苷,胞苷和尿苷,组成RNA并提供序列变异,但在结构变异和独特的化学性质上的贡献有限。通过长度,构象动力学的广泛变化以及超过100种的转录后修饰,RNA可以在细胞代谢中发挥多种作用。关于导致RNA修饰的生化途径有一些评论,但是修饰核苷的物理化学性质以及它们如何促进RNA功能引起了人们的强烈兴趣,特别是在修饰核苷的贡献方面。转移RNA(tRNA)是修饰最广泛的RNA。修饰的多样性为化学和结构环境提供了多功能性。在tRNA苜蓿叶形二级结构的茎末端出现的修饰核苷的化学,构象和动力学变化会影响全球三维构象,为大分子识别tRNA提供独特的识别决定因素,并影响tRNA的准确和高效解码能力。本文将讨论特定化学部分对tRNA的结构,稳定性,电化学性质和功能的影响。

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