Centrum Wiskunde & Informatica (CWI), P.O. Box 94079, 1090 GB, Amsterdam, The Netherlands.
J Mol Evol. 2013 Oct;77(4):170-84. doi: 10.1007/s00239-013-9571-2. Epub 2013 Jul 23.
The genetic code has a high level of error robustness. Using values of hydrophobicity scales as a proxy for amino acid character, and the mean square measure as a function quantifying error robustness, a value can be obtained for a genetic code which reflects the error robustness of that code. By comparing this value with a distribution of values belonging to codes generated by random permutations of amino acid assignments, the level of error robustness of a genetic code can be quantified. We present a calculation in which the standard genetic code is shown to be optimal. We obtain this result by (1) using recently updated values of polar requirement as input; (2) fixing seven assignments (Ile, Trp, His, Phe, Tyr, Arg, and Leu) based on aptamer considerations; and (3) using known biosynthetic relations of the 20 amino acids. This last point is reflected in an approach of subdivision (restricting the random reallocation of assignments to amino acid subgroups, the set of 20 being divided in four such subgroups). The three approaches to explain robustness of the code (specific selection for robustness, amino acid-RNA interactions leading to assignments, or a slow growth process of assignment patterns) are reexamined in light of our findings. We offer a comprehensive hypothesis, stressing the importance of biosynthetic relations, with the code evolving from an early stage with just glycine and alanine, via intermediate stages, towards 64 codons carrying todays meaning.
遗传密码具有高度的容错性。使用疏水性尺度值作为氨基酸特征的代理,并使用均方测量作为量化容错性的函数,可以为遗传密码获得一个值,该值反映了该代码的容错性。通过将此值与随机分配氨基酸的代码的分配值分布进行比较,可以量化遗传密码的容错性。我们提出了一种计算方法,表明标准遗传密码是最优的。我们通过以下方式获得此结果:(1)使用最近更新的极性要求值作为输入;(2)根据适体考虑固定七个分配值(Ile、Trp、His、Phe、Tyr、Arg 和 Leu);(3)使用已知的 20 种氨基酸的生物合成关系。这最后一点反映在一种细分方法中(限制氨基酸分配的随机重新分配到氨基酸亚组,将 20 个亚组分为四个这样的亚组)。根据我们的发现,重新审视了解释代码鲁棒性的三种方法(针对鲁棒性的特定选择、导致分配的氨基酸-RNA 相互作用,或分配模式的缓慢增长过程)。我们提出了一个全面的假设,强调生物合成关系的重要性,代码从早期只有甘氨酸和丙氨酸的阶段开始,通过中间阶段,发展到今天具有 64 个密码子的意义。