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The nature of the purine at position 34 in tRNAs of 4-codon boxes is correlated with nucleotides at positions 32 and 38 to maintain decoding fidelity

机译:4-密码子框tRNA中34位嘌呤的性质与32位和38位核苷酸的核苷酸相关以保持解码保真度

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摘要

Translation fidelity relies essentially on the ability of ribosomes to accurately recognize triplet interactions between codons on mRNAs and anticodons of tRNAs. To determine the codon-anticodon pairs that are efficiently accepted by the eukaryotic ribosome, we took advantage of the IRES from the intergenic region (IGR) of the Cricket Paralysis Virus. It contains an essential pseudoknot PKI that structurally and functionally mimics a codon-anticodon helix. We screened the entire set of 4096 possible combinations using ultrahigh-throughput screenings combining coupled transcription/translation and droplet-based microfluidics. Only 97 combinations are efficiently accepted and accommodated for translocation and further elongation: 38 combinations involve cognate recognition with Watson-Crick pairs and 59 involve near-cognate recognition pairs with at least one mismatch. More than half of the near-cognate combinations (36/59) contain a G at the first position of the anticodon (numbered 34 of tRNA). G34-containing tRNAs decoding 4-codon boxes are almost absent from eukaryotic genomes in contrast to bacterial genomes. We reconstructed these missing tRNAs and could demonstrate that these tRNAs are toxic to cells due to their miscoding capacity in eukaryotic translation systems. We also show that the nature of the purine at position 34 is correlated with the nucleotides present at 32 and 38.
机译:翻译保真度基本上取决于核糖体准确识别mRNA上的密码子与tRNA的反密码子之间的三联体相互作用的能力。为了确定真核核糖体有效接受的密码子-反密码子对,我们利用了来自板球麻痹病毒基因间区域(IGR)的IRES。它包含一个在结构和功能上模仿密码子-反密码子螺旋的基本假结PKI。我们使用结合了转录/翻译和基于液滴的微流控技术的超高通量筛选,筛选了4096种可能的组合的整个集合。只有97个组合有效地被接受并容纳以进行易位和进一步的延伸:38个组合涉及具有Watson-Crick对的同源识别,而59个涉及具有至少一个错配的近同源识别对。超过一半的近同源组合(36/59)在反密码子的第一个位置(tRNA的34)含有一个G。与细菌基因组相反,真核生物基因组中几乎不存在解码4-密码子盒的含G34 tRNA。我们重建了这些缺失的tRNA,并可以证明这些tRNA由于在真核翻译系统中的错误编码能力而对细胞具有毒性。我们还显示,第34位的嘌呤的性质与32和38处的核苷酸相关。

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