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Analysis of codon:anticodon interactions within the ribosome provides new insights into codon reading and the genetic code structure.

机译:核糖体内密码子:反密码子相互作用的分析为密码子阅读和遗传密码结构提供了新的见识。

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Although the decoding rules have been largely elucidated, the physical-chemical reasons for the "correctness" of codon:anticodon duplexes have never been clear. In this work, on the basis of the available data, we propose that the correct codon:anticodon duplexes are those whose formation and interaction with the ribosomal decoding center are not accompanied by uncompensated losses of hydrogen and ionic bonds. Other factors such as proofreading, base-base stacking and aminoacyl-tRNA concentration contribute to the efficiency and accuracy of aminoacyl-tRNA selection, and certainly these factors are important; but we suggest that analyses of hydrogen and ionic bonding alone provides a robust first-order approximation of decoding accuracy. Thus our model can simplify predictions about decoding accuracy and error. The model can be refined with data, but is already powerful enough to explain all of the available data on decoding accuracy. Here we predict which duplexes should be considered correct, which duplexes are responsible for virtually all misreading, and we suggest an evolutionary scheme that gave rise to the mixed boxes of the genetic code.
机译:尽管已基本阐明了解码规则,但对密码子:反密码子双链体“正确性”的物理化学原因尚不清楚。在这项工作中,基于可用的数据,我们建议正确的密码子:反密码子双链体是那些与核糖体解码中心形成和相互作用而不会伴随着氢和离子键的未补偿损失的双链体。其他因素,例如校对,碱基堆积和氨酰基-tRNA的浓度,都会影响氨酰基-tRNA选择的效率和准确性,当然这些因素很重要。但是我们建议仅通过氢键和离子键的分析就可以提供鲁棒的解码精度一阶近似值。因此,我们的模型可以简化关于解码准确性和错误的预测。可以用数据完善该模型,但是该模型已经足够强大,可以解释所有有关解码精度的可用数据。在这里,我们预测哪些双链体应该被认为是正确的,哪些双链体实际上导致了所有误读,并且我们提出了一种进化方案,该方案引起了遗传密码的混杂。

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