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Synonymous mutations make dramatic contributions to fitness when growth is limited by a weak-link enzyme

机译:当生长受到弱链接酶的限制时同义突变为适应性做出了巨大贡献

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摘要

Synonymous mutations do not alter the specified amino acid but may alter the structure or function of an mRNA in ways that impact fitness. There are few examples in the literature, however, in which the effects of synonymous mutations on microbial growth rates have been measured, and even fewer for which the underlying mechanism is understood. We evolved four populations of a strain of Salmonella enterica in which a promiscuous enzyme has been recruited to replace an essential enzyme. A previously identified point mutation increases the enzyme’s ability to catalyze the newly needed reaction (required for arginine biosynthesis) but decreases its ability to catalyze its native reaction (required for proline biosynthesis). The poor performance of this enzyme limits growth rate on glucose. After 260 generations, we identified two synonymous mutations in the first six codons of the gene encoding the weak-link enzyme that increase growth rate by 41 and 67%. We introduced all possible synonymous mutations into the first six codons and found substantial effects on growth rate; one doubles growth rate, and another completely abolishes growth. Computational analyses suggest that these mutations affect either the stability of a stem-loop structure that sequesters the start codon or the accessibility of the region between the Shine-Dalgarno sequence and the start codon. Thus, these mutations would be predicted to affect translational efficiency and thereby indirectly affect mRNA stability because translating ribosomes protect mRNA from degradation. Experimental data support these hypotheses. We conclude that the effects of the synonymous mutations are due to a combination of effects on mRNA stability and translation efficiency that alter levels of the weak-link enzyme. These findings suggest that synonymous mutations can have profound effects on fitness under strong selection and that their importance in evolution may be under-appreciated.
机译:同义突变不会改变指定的氨基酸,但可能会以影响适应性的方式改变mRNA的结构或功能。然而,文献中很少有例子可以测量到同义突变对微生物生长速率的影响,甚至更少的例子可以理解其潜在机制。我们进化了四个沙门氏菌菌株种群,其中已经招募了混杂酶来替代必需酶。先前发现的点突变增加了酶催化新需要的反应的能力(精氨酸生物合成所必需),但降低了其催化其天然反应的能力(脯氨酸生物合成所必需)。该酶的不良性能限制了葡萄糖的生长速率。在260代后,我们在编码弱连接酶的基因的前六个密码子中发现了两个同义突变,它们使生长速度分别提高了41%和67%。我们在前六个密码子中引入了所有可能的同义突变,并发现了对生长速率的重大影响。一个使增长率翻倍,而另一个则完全废除增长。计算分析表明,这些突变影响隔离起始密码子的茎环结构的稳定性或Shine-Dalgarno序列与起始密码子之间区域的可及性。因此,由于翻译核糖体保护mRNA免于降解,这些突变将被预测会影响翻译效率并因此间接影响mRNA的稳定性。实验数据支持了这些假设。我们得出结论,同义突变的影响是由于对mRNA稳定性和翻译效率的影响相结合,从而改变了弱连接酶的水平。这些发现表明,同义突变在强选择下可能对适应性产生深远影响,并且它们在进化中的重要性可能未被充分认识。

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