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Rapid evolution of expression and regulatory divergences after yeast gene duplication.

机译:酵母基因复制后表达和调控差异的快速进化。

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Although gene duplication is widely believed to be the major source of genetic novelty, how the expression or regulatory network of duplicate genes evolves remains poorly understood. In this article, we propose an additive expression distance between duplicate genes, so that the evolutionary rate of expression divergence after gene duplication can be estimated through phylogenomic analysis. We have analyzed yeast genome sequences, microarrays, and transcriptional regulatory networks, showing a >10-fold increase in the initial rate for both expression and regulatory network evolution after gene duplication but only an approximately 20% rate increase in the early stage for protein sequences. Based on the estimated age distribution of yeast duplicate genes, we roughly estimate that the initial rate of expression divergence shortly after gene duplication is 2.9 x 10(-9) per year, whereas the baseline rate for very ancient gene duplication is 0.14 x 10(-9) per year. Relative expression rate tests suggest that the expression of duplicate genes tends to evolve asymmetrically, that is, the expression of one copy evolves rapidly, whereas the other one largely maintains the ancestral expression profile. Our study highlights the crucial role of early rapid evolution after gene/genome duplication for continuously increasing the complexity of the yeast regulatory network.
机译:尽管人们普遍认为基因复制是遗传新颖性的主要来源,但对复制基因的表达或调控网络如何进化的了解仍然很少。在本文中,我们提出了重复基因之间的加性表达距离,以便可以通过系统进化分析来估计基因重复后表达差异的进化速率。我们已经分析了酵母基因组序列,微阵列和转录调控网络,显示基因复制后表达和调控网络进化的初始速率增加了10倍以上,而蛋白质序列的早期速率仅增加了约20% 。根据估计的酵母重复基因的年龄分布,我们粗略估算出基因复制后不久的初始表达差异率为每年2.9 x 10(-9),而非常古老的基因复制的基线率为0.14 x 10( -9)每年。相对表达率测试表明,重复基因的表达趋向于不对称进化,也就是说,一个副本的表达迅速发展,而另一副本很大程度上保持了祖先的表达特征。我们的研究强调了基因/基因组复制后早期快速进化对于持续增加酵母调控网络复杂性的关键作用。

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