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基因组结构驱动纤毛虫的蛋白质进化。

Genome architecture drives protein evolution in ciliates.

作者信息

Zufall Rebecca A, McGrath Casey L, Muse Spencer V, Katz Laura A

机构信息

Department of Biological Sciences, Smith College, USA.

出版信息

Mol Biol Evol. 2006 Sep;23(9):1681-7. doi: 10.1093/molbev/msl032. Epub 2006 Jun 7.

Abstract

Studies of microbial eukaryotes have been pivotal in the discovery of biological phenomena, including RNA editing, self-splicing RNA, and telomere addition. Here we extend this list by demonstrating that genome architecture, namely the extensive processing of somatic (macronuclear) genomes in some ciliate lineages, is associated with elevated rates of protein evolution. Using newly developed likelihood-based procedures for studying molecular evolution, we investigate 6 genes to compare 1) ciliate protein evolution to that of 3 other clades of eukaryotes (plants, animals, and fungi) and 2) protein evolution in ciliates with extensively processed macronuclear genomes to that of other ciliate lineages. In 5 of the 6 genes, ciliates are estimated to have a higher ratio of nonsynonymous/synonymous substitution rates, consistent with an increase in the rate of protein diversification in ciliates relative to other eukaryotes. Even more striking, there is a significant effect of genome architecture within ciliates as the most divergent proteins are consistently found in those lineages with the most highly processed macronuclear genomes. We propose a model whereby genome architecture-specifically chromosomal processing, amitosis within macronuclei, and epigenetics-allows ciliates to explore protein space in a novel manner. Further, we predict that examination of diverse eukaryotes will reveal additional evidence of the impact of genome architecture on molecular evolution.

摘要

对微生物真核生物的研究在发现生物现象方面发挥了关键作用,这些现象包括RNA编辑、自我剪接RNA和端粒添加。在此,我们通过证明基因组结构,即在某些纤毛虫谱系中体细胞(大核)基因组的广泛加工,与蛋白质进化速率的提高相关,从而扩展了这一清单。使用新开发的基于似然性的分子进化研究方法,我们研究了6个基因,以比较:1)纤毛虫的蛋白质进化与其他3个真核生物类群(植物、动物和真菌)的蛋白质进化;2)具有广泛加工的大核基因组的纤毛虫的蛋白质进化与其他纤毛虫谱系的蛋白质进化。在这6个基因中的5个基因中,估计纤毛虫的非同义/同义替换率比值更高,这与纤毛虫相对于其他真核生物蛋白质多样化速率的增加一致。更引人注目的是,在纤毛虫内部,基因组结构有显著影响,因为在那些大核基因组加工程度最高的谱系中始终发现了差异最大的蛋白质。我们提出了一个模型,据此基因组结构——特别是染色体加工、大核内的无丝分裂和表观遗传学——使纤毛虫能够以一种新颖的方式探索蛋白质空间。此外,我们预测对不同真核生物的研究将揭示基因组结构对分子进化影响的更多证据。

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