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Many alternative and theoretical genetic codes are more robust to amino acid replacements than the standard genetic code

机译:许多替代和理论遗传码对氨基酸更换比标准遗传密码更强大

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We evaluated the differences between the standard genetic code (SGC) and its known alternative variants in terms of the consequences of amino acids replacements. Furthermore, the properties of all the possible theoretical genetic codes, which differ from the SGC by one, two or three changes in codon assignments were also tested. Although the SGC is closer to the best theoretical codes than to the worst ones due to the minimization of amino acid replacements, from 10% to 27% of the all possible theoretical codes minimize the effect of these replacements better than the SGC. Interestingly, many types of codon reassignments observed in the alternative codes are also responsible for the substantial robustness to amino acid replacements. As many as 18 out of 21 alternatives perform better than the SGC under the assumed optimization criteria. These findings suggest that not all reassignments in the alternative codes are neutral and some of them could be selected to reduce harmful effects of mutations or translation of protein-coding sequences. The results also imply that the standard genetic code can be improved in this respect by a quite small number of changes, which are in fact realized in its variants. It would mean that the tendency to minimize mutational errors was not the main force that drove the evolution of the SGC. (C) 2018 Elsevier Ltd. All rights reserved.
机译:我们在氨基酸置换的后果方面评估了标准遗传码(SGC)及其已知的替代变体之间的差异。此外,还测试了与SGC不同的所有可能的理论遗传码的性质也在密码子分配中的两个或三个变化。尽管SGC比最小化氨基酸替换的最佳理论代码更靠近最佳理论代码,但是从所有可能的理论码的10%到27%的10%至27%最小化这些替换的效果优于SGC。有趣的是,在替代代码中观察到的许多类型的密码子重新分配也负责氨基酸替代的实质性鲁棒性。在21个替代方案中多达18个,在假定的优化标准下比SGC更好地执行。这些发现表明,替代代码中的所有重新分配都是中性,并且可以选择其中一些以减少蛋白编码序列的突变或翻译的有害影响。结果还暗示,在这方面可以通过相当多的变化来改善标准遗传密码,其实际上在其变体中实现。这意味着最小化突变误差的趋势不是推动SGC演化的主力。 (c)2018年elestvier有限公司保留所有权利。

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