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Testing constraints on rRNA bases that make nonsequence-specific contacts with the codon•anticodon complex in the ribosomal A site

机译:测试对与核糖体A位点的密码子•反密码子复合体进行非序列特异性接触的rRNA碱基的限制

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摘要

During protein synthesis, interactions between the decoding center of the ribosome and the codon·anticodon complexes maintain translation accuracy. Correct aminoacyl-tRNAs induce the ribosome to shift into a “closed” conformation that both blocks tRNA dissociation and accelerates the process of tRNA acceptance. As part of the ribosomal recognition of cognate tRNAs, the rRNA nucleotides G530 and A1492 form a hydrogen-bonded pair that interacts with the middle position of the codon·anticodon complex and recognizes correct Watson–Crick base pairs. Exchanging these two nucleotides (A530 and G1492) would not disrupt these interactions, suggesting that such a double mutant ribosome might properly recognize tRNAs and support viability. We find, however, that exchange mutants retain little ribosomal activity. We suggest that even though the exchanged nucleotides might function properly during tRNA recruitment, they might disrupt one or more other functions of the nucleotides during other stages of protein synthesis.
机译:在蛋白质合成过程中,核糖体的解码中心与密码子/反密码子复合物之间的相互作用保持翻译的准​​确性。正确的氨酰基-tRNA诱导核糖体转变为“封闭”构象,既阻断了tRNA的解离,又加速了tRNA的接受过程。作为同源tRNA核糖体识别的一部分,rRNA核苷酸G530和A1492形成氢键对,该氢键对与密码子·反密码子复合体的中间位置相互作用,并识别正确的Watson-Crick碱基对。交换这两个核苷酸(A530和G1492)不会破坏这些相互作用,这表明这种双重突变核糖体可能会正确识别tRNA并支持生存能力。但是,我们发现交换突变体保留很少的核糖体活性。我们建议,即使交换的核苷酸在tRNA募集期间可能正常运行,它们也可能在蛋白质合成的其他阶段破坏核苷酸的一种或多种其他功能。

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