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Nucleotide modifications and tRNA anticodon-mRNA codon interactions on the ribosome.

机译:核糖体上的核苷酸修饰和tRNA抗密码子-mRNA密码子相互作用。

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We have carried out molecular dynamics simulations of the tRNA anticodon and mRNA codon, inside the ribosome, to study the effect of the common tRNA modifications cmo(5)U34 and m(6)A37. In tRNA(Val), these modifications allow all four nucleotides to be successfully read at the wobble position in a codon. Previous data suggest that entropic effects are mainly responsible for the extended reading capabilities, but detailed mechanisms have remained unknown. We have performed a wide range of simulations to elucidate the details of these mechanisms at the atomic level and quantify their effects: extensive free energy perturbation coupled with umbrella sampling, entropy calculations of tRNA (free and bound to the ribosome), and thorough structural analysis of the ribosomal decoding center. No prestructuring effect on the tRNA anticodon stem-loop from the two modifications could be observed, but we identified two mechanisms that may contribute to the expanded decoding capability by the modifications: The further reach of the cmo(5)U34 allows an alternative outer conformation to be formed for the noncognate base pairs, and the modification results in increased contacts between tRNA, mRNA, and the ribosome.
机译:我们对核糖体内部的tRNA反密码子和mRNA密码子进行了分子动力学模拟,以研究常见tRNA修饰cmo(5)U34和m(6)A37的作用。在tRNA(Val)中,这些修饰允许在密码子的摆动位置成功读取所有四个核苷酸。先前的数据表明,熵效应主要是扩展阅读能力的原因,但详细的机制仍未知。我们已经进行了广泛的模拟,以在原子水平上阐明这些机制的细节并量化其作用:广泛的自由能摄动与伞状采样相结合,tRNA的熵计算(游离并结合到核糖体)以及彻底的结构分析核糖体解码中心。两种修饰均未观察到对tRNA反密码子茎环的预构建效应,但我们确定了两种可能通过修饰而有助于扩大解码能力的机制:cmo(5)U34的进一步延伸可实现其他外部构象非同源碱基对形成的RNA,修饰导致tRNA,mRNA和核糖体之间的接触增加。

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