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Load minimization of the genetic code: history does not explain the pattern

机译:最小化遗传密码:历史不能解释模式

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摘要

The average effect of errors acting on a genetic code (the change in amino-acid meaning resulting from point mutation and mistranslation) may be quantified as its 'load'. The natural genetic code shows a clear property of minimizing this load when compared against randomly generated variant codes. Two hypotheses may be considered to explain this property. First, it is possible that the natural code is the result of selection to minimize this load. Second, it is possible that the property is an historical artefact. It has previously been reported that amino acids that have been assigned to codons starting with the same base come from the same biosynthetic pathway. This probably reflects the manner in which the code evolved from a simpler code, and says more about the physicochemical mechanisms of code assembly than about selection. The apparent load minimization of the code may therefore follow as a consequence of the fact that the code could not have evolved any other way than to allow biochemically related amino acids to have related codons. Here then, we ask whether this 'historical' force alone can explain the efficiency of the natural code in minimizing the effects of error. We therefore compare the error-minimizing ability of the natural code with that of alternative codes which, rather than being a random selection, are restricted such that amino acids from the same biochemical pathway all share the same first base. We find that although on average the restricted set of codes show a slightly higher efficiency than random ones, the real code remains extremely efficient relative to this subset P = 0.0003. This indicates that for the most part historical features do not explain the load- minimization property of the natural code. The importance of selection is further supported by the finding that the natural code's efficiency improves relative to that of historically related codes after allowance is made for realistic mutational and mistranslational biases. Once mistranslational biases have been considered, fewer than four per 100,000 alternative codes are better than the natural code.
机译:错误对遗传密码的平均影响(由点突变和错误翻译导致的氨基酸含义变化)可以量化为“负荷”。当与随机生成的变体代码进行比较时,自然遗传密码显示出最小化此负载的明显特性。可以考虑两个假设来解释此属性。首先,自然代码可能是选择的结果,以最小化此负载。其次,该财产可能是历史文物。先前已经报道,以相同碱基开始分配给密码子的氨基酸来自相同的生物合成途径。这可能反映了代码从更简单的代码演变而来的方式,并且说的更多是关于代码汇编的物理化学机制,而不是选择。因此,代码的表观负载最小化可能是以下事实的结果:代码除了允许与生物化学有关的氨基酸具有相关密码子外,不可能进化出其他任何方式。然后,我们在这里问,仅凭这种“历史性”力量是否可以解释自然代码在最小化错误影响方面的效率。因此,我们将自然密码与替代密码的最小化错误能力进行比较,该替代密码不是随机选择的,而是受限制的,这样来自同一生化途径的氨基酸都共享相同的第一碱基。我们发现,尽管平均而言,受限制的代码集显示出的效率要比随机的集略高,但相对于此子集P = 0.0003,实际代码仍然保持着极其有效的效率。这表明在大多数情况下,历史功能未解释自然代码的负载最小化属性。选择的重要性进一步得到以下发现的支持:在考虑到现实的突变和翻译错误后,自然密码的效率相对于历史相关密码有所提高。一旦考虑了翻译错误,每100,000个替代代码中少于四个比自然代码更好。

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