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High-resolution genetic mapping of maize pan-genome sequence anchors

机译:玉米全基因组序列锚的高分辨率遗传定位

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In addition to single-nucleotide polymorphisms, structural variation is abundant in many plant genomes. The structural variation across a species can be represented by a 'pan-genome', which is essential to fully understand the genetic control of phenotypes. However, the pan-genome's complexity hinders its accurate assembly via sequence alignment. Here we demonstrate an approach to facilitate pan-genome construction in maize. By performing 18 trillion association tests we map 26 million tags generated by reduced representation sequencing of 14,129 maize inbred lines. Using machine-learning models we select 4.4 million accurately mapped tags as sequence anchors, 1.1 million of which are presence/absence variations. Structural variations exhibit enriched association with phenotypic traits, indicating that it is a significant source of adaptive variation in maize. The ability to efficiently map ultrahigh-density pan-genome sequence anchors enables fine characterization of structural variation and will advance both genetic research and breeding in many crops.
机译:除了单核苷酸多态性外,许多植物基因组中的结构变异也很丰富。跨物种的结构变异可以通过“泛基因组”来表示,这对于充分了解表型的遗传控制至关重要。然而,泛基因组的复杂性阻碍了其通过序列比对的准确组装。在这里,我们展示了一种促进玉米全基因组构建的方法。通过执行18万亿次关联测试,我们可以绘制由14129个玉米自交系的简化表示序列生成的2600万个标签。使用机器学习模型,我们选择了440万个精确映射的标签作为序列锚,其中110万个标签是存在/不存在的变化。结构变异表现出与表型性状的丰富关联,表明它是玉米适应性变异的重要来源。有效绘制超高密度泛基因组序列锚定图的能力可以对结构变异进行精细表征,并将促进遗传研究和许多作物的育种。

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