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Changes in twelve homoeologous genomic regions in soybean following three rounds of polyploidy.三倍体大豆中 12 个同源基因组区域的变化。
Plant Cell. 2011 Sep;23(9):3129-36. doi: 10.1105/tpc.111.089573. Epub 2011 Sep 13.
2
Conservation and purifying selection of transcribed genes located in a rice centromere.转录基因在水稻着丝粒中的保守性与纯化选择。
Plant Cell. 2011 Aug;23(8):2821-30. doi: 10.1105/tpc.111.085605. Epub 2011 Aug 19.
3
Ancestral polyploidy in seed plants and angiosperms.种子植物和被子植物的祖先多倍体。
Nature. 2011 May 5;473(7345):97-100. doi: 10.1038/nature09916. Epub 2011 Apr 10.
4
Factors that contribute to variation in evolutionary rate among Arabidopsis genes.导致拟南芥基因进化速率变化的因素。
Mol Biol Evol. 2011 Aug;28(8):2359-69. doi: 10.1093/molbev/msr058. Epub 2011 Mar 9.
5
Differentiation of the maize subgenomes by genome dominance and both ancient and ongoing gene loss.通过基因组主导地位以及古代和持续的基因丢失来区分玉米的亚基因组。
Proc Natl Acad Sci U S A. 2011 Mar 8;108(10):4069-74. doi: 10.1073/pnas.1101368108. Epub 2011 Feb 22.
6
Histone H3K4 methylation keeps centromeres open for business.组蛋白 H3K4 甲基化使着丝粒保持开放状态。
EMBO J. 2011 Jan 19;30(2):233-4. doi: 10.1038/emboj.2010.339.
7
Whole-genome sequencing and intensive analysis of the undomesticated soybean (Glycine soja Sieb. and Zucc.) genome.全基因组测序和对野生大豆(Glycine soja Sieb. and Zucc.)基因组的深入分析。
Proc Natl Acad Sci U S A. 2010 Dec 21;107(51):22032-7. doi: 10.1073/pnas.1009526107. Epub 2010 Dec 3.
8
Resequencing of 31 wild and cultivated soybean genomes identifies patterns of genetic diversity and selection.对 31 个野生和栽培大豆基因组进行重测序,鉴定遗传多样性和选择模式。
Nat Genet. 2010 Dec;42(12):1053-9. doi: 10.1038/ng.715. Epub 2010 Nov 14.
9
Dated molecular phylogenies indicate a Miocene origin for Arabidopsis thaliana.年代分子系统发育表明拟南芥起源于中新世。
Proc Natl Acad Sci U S A. 2010 Oct 26;107(43):18724-8. doi: 10.1073/pnas.0909766107. Epub 2010 Oct 4.
10
Structural and functional divergence of a 1-Mb duplicated region in the soybean (Glycine max) genome and comparison to an orthologous region from Phaseolus vulgaris.大豆(Glycine max)基因组中 1-Mb 重复区域的结构和功能分化及其与菜豆(Phaseolus vulgaris)同源区域的比较。
Plant Cell. 2010 Aug;22(8):2545-61. doi: 10.1105/tpc.110.074229. Epub 2010 Aug 20.

着丝粒周围效应塑造了古多倍体大豆中重复基因的分化、保留和表达模式。

Pericentromeric effects shape the patterns of divergence, retention, and expression of duplicated genes in the paleopolyploid soybean.

机构信息

Department of Agronomy, Purdue University, West Lafayette, Indiana 47907, USA.

出版信息

Plant Cell. 2012 Jan;24(1):21-32. doi: 10.1105/tpc.111.092759. Epub 2012 Jan 6.

DOI:10.1105/tpc.111.092759
PMID:22227891
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3289580/
Abstract

The evolutionary forces that govern the divergence and retention of duplicated genes in polyploids are poorly understood. In this study, we first investigated the rates of nonsynonymous substitution (Ka) and the rates of synonymous substitution (Ks) for a nearly complete set of genes in the paleopolyploid soybean (Glycine max) by comparing the orthologs between soybean and its progenitor species Glycine soja and then compared the patterns of gene divergence and expression between pericentromeric regions and chromosomal arms in different gene categories. Our results reveal strong associations between duplication status and Ka and gene expression levels and overall low Ks and low levels of gene expression in pericentromeric regions. It is theorized that deleterious mutations can easily accumulate in recombination-suppressed regions, because of Hill-Robertson effects. Intriguingly, the genes in pericentromeric regions-the cold spots for meiotic recombination in soybean-showed significantly lower Ka and higher levels of expression than their homoeologs in chromosomal arms. This asymmetric evolution of two members of individual whole genome duplication (WGD)-derived gene pairs, echoing the biased accumulation of singletons in pericentromeric regions, suggests that distinct genomic features between the two distinct chromatin types are important determinants shaping the patterns of divergence and retention of WGD-derived genes.

摘要

进化力量控制着多倍体中重复基因的分歧和保留,但人们对此知之甚少。在这项研究中,我们首先通过比较大豆及其祖先种野大豆之间的直系同源物,研究了近完整的大豆基因集合中非同义替换 (Ka) 和同义替换 (Ks) 的速率,然后比较了不同基因类别中外周着丝粒区域和染色体臂之间的基因分化和表达模式。我们的结果揭示了重复状态与 Ka 和基因表达水平之间的强烈关联,以及在外周着丝粒区域中 Ks 总体较低和基因表达水平较低。据推测,由于 Hill-Robertson 效应,有害突变很容易在外周着丝粒区域中积累,这是重组抑制区域。有趣的是,在外周着丝粒区域(大豆减数分裂重组的冷点)的基因的 Ka 明显较低,表达水平明显高于其在染色体臂中的同源物。个别全基因组重复 (WGD) 衍生基因对的两个成员的这种不对称进化,与在着丝粒区域中单个基因的偏积累相呼应,表明两种不同染色质类型之间的不同基因组特征是塑造 WGD 衍生基因分歧和保留模式的重要决定因素。