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A 4-gigabase physical map unlocks the structure and evolution of the complex genome of Aegilops tauschii the wheat D-genome progenitor

机译:一张4千兆位的物理图谱揭示了小麦D基因组祖先埃格勒山羊草复杂基因组的结构和进化

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摘要

The current limitations in genome sequencing technology require the construction of physical maps for high-quality draft sequences of large plant genomes, such as that of Aegilops tauschii, the wheat D-genome progenitor. To construct a physical map of the Ae. tauschii genome, we fingerprinted 461,706 bacterial artificial chromosome clones, assembled contigs, designed a 10K Ae. tauschii Infinium SNP array, constructed a 7,185-marker genetic map, and anchored on the map contigs totaling 4.03 Gb. Using whole genome shotgun reads, we extended the SNP marker sequences and found 17,093 genes and gene fragments. We showed that collinearity of the Ae. tauschii genes with Brachypodium distachyon, rice, and sorghum decreased with phylogenetic distance and that structural genome evolution rates have been high across all investigated lineages in subfamily Pooideae, including that of Brachypodieae. We obtained additional information about the evolution of the seven Triticeae chromosomes from 12 ancestral chromosomes and uncovered a pattern of centromere inactivation accompanying nested chromosome insertions in grasses. We showed that the density of noncollinear genes along the Ae. tauschii chromosomes positively correlates with recombination rates, suggested a cause, and showed that new genes, exemplified by disease resistance genes, are preferentially located in high-recombination chromosome regions.
机译:目前,基因组测序技术的局限性要求为大型植物基因组的高质量草图序列(例如小麦D基因组祖先埃格氏菌(Aegilops tauschii)的序列)构建物理图谱。绘制Ae的物理图。在Tauschii基因组中,我们对461,706个细菌人工染色体克隆进行了指纹识别,组装了重叠群,设计了10K Ae。 tauschii Infinium SNP阵列,构建了7,185个标记的遗传图谱,并锚定在总共约4.03 Gb的图谱重叠群上。使用全基因组shot弹枪读取,我们扩展了SNP标记序列,发现了17,093个基因和基因片段。我们证明了Ae的共线性。带有腕果,水稻和高粱的玉米tauschii基因随着系统发生距离的增加而降低,并且在整个Pooideae科,包括腕足科的所有世系中,结构基因组进化率一直很高。我们从12个祖先染色体中获得了关于7个小麦的染色体进化的其他信息,并发现了伴随草丛中嵌套染色体插入而着丝粒失活的模式。我们证明了沿Ae的非共线基因的密度。 tauschii染色体与重组率呈正相关,提示其病因,并表明以抗病基因为例的新基因优先位于高重组染色体区域。

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