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Genome evolutionary dynamics followed by diversifying selection explains the complexity of the Sesamum indicum genome

机译:基因组进化动力学和随后的多样化选择解释了芝麻芝麻基因组的复杂性

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Background Whole genome duplication (WGD) and tandem duplication (TD) provide two critical sources of raw genetic material for genome complexity and evolutionary novelty. Little is known about the complexity of the Sesamum indicum genome after it diverged from a common ancestor with the paleodiploid Vitis vinifera and further experienced WGD and TD events. Results Here, we analyzed the functional divergence of different classes of inter- and intra-genome gene pairs from ancestral events to uncover multiple-layers of evolutionary dynamics acting during the process of forming the modern S. indicum genome. Comprehensive inter-genome analyses revealed that 60% and 70% of syntenic orthologous gene pairs were retained among the two subgenomes in S. indicum compared to V. vinifera , although there was no evidence of significant differences under selection pressure. For the intra-genomic analyses, 5,932 duplicated gene pairs experienced fractionation, with the remaining 1,236 duplicated gene pairs having undergone functional divergence under diversifying selection. Analysis of the TD events indicated that 2,945 paralogous gene pairs, from 1,089 tandem arrays of 2–16 genes, experienced functional divergence under diversifying selection. Sequence diversification of different classes of gene pairs revealed that most of TD events occurred after the WGD event, with others following the ancestral gene order indicating ancient TD events at some time prior to the WGD event. Our comparison-of-function analyses for different classes of gene pairs indicated that the WGD and TD evolutionary events were both responsible for introducing genes that enabled exploration of novel and complementary functionalities, whilst maintaining individual plant ruggedness. Conclusions In this study, we first investigated functional divergence of different classes of gene pairs to characterize the dynamic processes associated with each evolutionary event in S. indicum . The data demonstrated massive and distinct functional divergence among different classes of gene pairs, and provided a genome-scale view of gene function diversification explaining the complexity of the S. indicum genome. We hope this provides a biological model to study the mechanism of plant species formation, particularly in the context of the evolutionary history of flowering plants, and offers novel insights for the study of angiosperm genomes.
机译:背景技术全基因组复制(WGD)和串联复制(TD)为基因组复杂性和进化新奇提供了两个重要的原始遗传材料来源。芝麻的基因组的复杂性知之甚少,因为它与普通的二倍体葡萄(Vitis vinifera)脱离了共同的祖先,并经历了更多的WGD和TD事件。结果在这里,我们分析了不同种类的基因组间和基因组内基因对的功能差异,从祖先事件到揭示现代印度血统基因组过程中作用的进化动力学多层。全面的基因组间分析显示,与酿酒葡萄相比,印度洋的两个亚基因组中保留了60%和70%的同系直系同源基因对,尽管在选择压力下没有明显的差异。对于基因组内分析,有5,932个重复的基因对经历了分级分离,其余1,236个重复的基因对在多样化选择下经历了功能性分化。对TD事件的分析表明,来自2-16个基因的1,089个串联阵列中的2,945个同源基因对在多样化选择下经历了功能差异。不同类别基因对的序列多样化显示,大多数TD事件发生在WGD事件之后,而其他遵循祖先基因顺序的事件则表明在WGD事件之前的某个时间出现了古老的TD事件。我们对不同类别基因对的功能比较分析表明,WGD和TD进化事件均负责引入基因,这些基因能够探索新的和互补的功能,同时保持植物的坚固性。结论在这项研究中,我们首先研究了不同类别基因对的功能差异,以表征与印度血吸虫每个进化事件相关的动态过程。数据表明不同类别的基因对之间存在巨大且明显的功能差异,并提供了基因功能多样性的基因组规模视图,从而解释了印度血统的基因组的复杂性。我们希望这提供了一个生物学模型来研究植物物种形成的机制,特别是在开花植物的进化史中,并且为被子植物基因组的研究提供了新颖的见解。

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