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多年生黑麦草基因组拉链:靶向使用基因组资源进行比较草基因组学研究。

The perennial ryegrass GenomeZipper: targeted use of genome resources for comparative grass genomics.

机构信息

Institute of Bioinformatics and Systems Biology, Helmholtz Center Munich, German Research Center for Environmental Health, 85764 Neuherberg, Germany.

出版信息

Plant Physiol. 2013 Feb;161(2):571-82. doi: 10.1104/pp.112.207282. Epub 2012 Nov 26.

Abstract

Whole-genome sequences established for model and major crop species constitute a key resource for advanced genomic research. For outbreeding forage and turf grass species like ryegrasses (Lolium spp.), such resources have yet to be developed. Here, we present a model of the perennial ryegrass (Lolium perenne) genome on the basis of conserved synteny to barley (Hordeum vulgare) and the model grass genome Brachypodium (Brachypodium distachyon) as well as rice (Oryza sativa) and sorghum (Sorghum bicolor). A transcriptome-based genetic linkage map of perennial ryegrass served as a scaffold to establish the chromosomal arrangement of syntenic genes from model grass species. This scaffold revealed a high degree of synteny and macrocollinearity and was then utilized to anchor a collection of perennial ryegrass genes in silico to their predicted genome positions. This resulted in the unambiguous assignment of 3,315 out of 8,876 previously unmapped genes to the respective chromosomes. In total, the GenomeZipper incorporates 4,035 conserved grass gene loci, which were used for the first genome-wide sequence divergence analysis between perennial ryegrass, barley, Brachypodium, rice, and sorghum. The perennial ryegrass GenomeZipper is an ordered, information-rich genome scaffold, facilitating map-based cloning and genome assembly in perennial ryegrass and closely related Poaceae species. It also represents a milestone in describing synteny between perennial ryegrass and fully sequenced model grass genomes, thereby increasing our understanding of genome organization and evolution in the most important temperate forage and turf grass species.

摘要

全基因组序列的建立为模型和主要作物物种的高级基因组研究提供了关键资源。对于像黑麦草(Lolium spp.)这样的异花授粉饲料和草坪草物种,还没有开发出这样的资源。在这里,我们根据与大麦(Hordeum vulgare)和模式草基因组短柄草(Brachypodium distachyon)以及水稻(Oryza sativa)和高粱(Sorghum bicolor)的保守共线性,提出了多年生黑麦草(Lolium perenne)基因组的模型。多年生黑麦草基于转录组的遗传连锁图谱作为支架,建立了来自模式草物种的同源基因的染色体排列。该支架揭示了高度的同源性和宏观共线性,然后利用该支架将多年生黑麦草的一组基因在计算机上锚定到它们预测的基因组位置。这使得 3315 个先前未被定位的基因中的 3315 个被明确分配到各自的染色体上。总共,基因组拉链整合了 4035 个保守的禾本科基因座,这些基因座被用于多年生黑麦草、大麦、短柄草、水稻和高粱之间的首次全基因组序列分化分析。多年生黑麦草基因组拉链是一个有序的、信息丰富的基因组支架,为多年生黑麦草和相关禾本科物种的图谱克隆和基因组组装提供了便利。它还代表了描述多年生黑麦草与完全测序的模式草基因组之间的同线性的一个里程碑,从而增加了我们对最重要的温带饲料和草坪草物种的基因组组织和进化的理解。

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