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Discovery of 20 novel ribosomal leader candidates in bacteria and archaea

机译:发现20种新型核糖体引导候选候选人的细菌和古代

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RNAs perform many functions in addition to supplying coding templates, such as binding proteins. RNA-protein interactions are important in multiple processes in all domains of life, and the discovery of additional protein-binding RNAs expands the scope for studying such interactions. To find such RNAs, we exploited a form of ribosomal regulation. Ribosome biosynthesis must be tightly regulated to ensure that concentrations of rRNAs and ribosomal proteins (r-proteins) match. One regulatory mechanism is a ribosomal leader (r-leader), which is a domain in the 5′ UTR of an mRNA whose genes encode r-proteins. When the concentration of one of these r-proteins is high, the protein binds the r-leader in its own mRNA, reducing gene expression and thus protein concentrations. To date, 35 types of r-leaders have been validated or predicted. By analyzing additional conserved RNA structures on a multi-genome scale, we identified 20 novel r-leader structures. Surprisingly, these included new r-leaders in the highly studied organisms Escherichia coli and Bacillus subtilis. Our results reveal several cases where multiple unrelated RNA structures likely bind the same r-protein ligand, and uncover previously unknown r-protein ligands. Each r-leader consistently occurs upstream of r-protein genes, suggesting a regulatory function. That the predicted r-leaders function as RNAs is supported by evolutionary correlations in the nucleotide sequences that are characteristic of a conserved RNA secondary structure. The r-leader predictions are also consistent with the locations of experimentally determined transcription start sites. This work increases the number of known or predicted r-leader structures by more than 50%, providing additional opportunities to study structural and evolutionary aspects of RNA-protein interactions. These results provide a starting point for detailed experimental studies.
机译:除了提供编码模板之外,RNA还执行许多功能,例如结合蛋白。 RNA-蛋白质相互作用在寿讯结构域中的多种过程中是重要的,并且发现另外的蛋白结合RNA的发现扩展了研究这种相互作用的范围。为了找到这样的RNA,我们利用了一种核糖体调节形式。必须紧密调节核糖体生物合成,以确保RRNA和核糖体蛋白(R-蛋白)的浓度匹配。一种调节机制是核糖体领导(R-LENDER),其是在编码R-蛋白的mRNA的mRNA的5'UTR中的域。当这些R-蛋白之一的浓度高时,蛋白质在其自身mRNA中结合R-eMirl,还原基因表达并因此减少蛋白质浓度。迄今为止,已验证或预测了35种R-Leaders。通过对多基因组规模的额外保守的RNA结构分析,我们确定了20个新的R领导结构。令人惊讶的是,这些包括在高度学习的生物体大肠杆菌和枯草芽孢杆菌中的新的R领导。我们的结果揭示了多种不相关的RNA结构可能结合相同的R蛋白配体,并揭示先前未知的R蛋白配体的情况。每个R-Leader一致地发生在R蛋白基因的上游,表明调节功能。通过核苷酸序列中的核苷酸序列中的进化相关来支持预测的R-inders函数,其是保守的RNA二级结构的特征。 R-Leader预测也与实验确定的转录起始位点的位置一致。这项工作将已知或预测的R-Leader结构的数量增加超过50%,为研究RNA-蛋白质相互作用的结构和进化方面提供额外的机会。这些结果提供了详细实验研究的起点。

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