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Whole-genome mapping of agronomic and metabolic traits to identify novel quantitative trait loci in bread wheat grown in a water-limited environment

机译:农艺和代谢性状的全基因组作图,以确定在水限制环境中生长的面包小麦中的新型数量性状基因座

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摘要

Drought is a major environmental constraint responsible for grain yield losses of bread wheat (Triticum aestivum) in many parts of the world. Progress in breeding to improve complex multigene traits, such as drought stress tolerance, has been limited by high sensitivity to environmental factors, low trait heritability, and the complexity and size of the hexaploid wheat genome. In order to obtain further insight into genetic factors that affect yield under drought, we measured the abundance of 205 metabolites in flag leaf tissue sampled from plants of 179 cv Excalibur/Kukri F1-derived doubled haploid lines of wheat grown in a field experiment that experienced terminal drought stress. Additionally, data on 29 agronomic traits that had been assessed in the same field experiment were used. A linear mixed model was used to partition and account for nongenetic and genetic sources of variation, and quantitative trait locus analysis was used to estimate the genomic positions and effects of individual quantitative trait loci. Comparison of the agronomic and metabolic trait variation uncovered novel correlations between some agronomic traits and the levels of certain primary metabolites, including metabolites with either positive or negative associations with plant maturity-related or grain yield-related traits. Our analyses demonstrate that specific regions of the wheat genome that affect agronomic traits also have distinct effects on specific combinations of metabolites. This approach proved valuable for identifying novel biomarkers for the performance of wheat under drought and could facilitate the identification of candidate genes involved in drought-related responses in bread wheat.
机译:干旱是造成世界上许多地区面包小麦(Triticum aestivum)谷物减产的主要环境制约因素。对环境因素的高敏感性,低性状遗传力以及六倍体小麦基因组的复杂性和大小限制了改善复杂的多基因性状(如耐旱性)的育种进展。为了进一步了解影响干旱条件下产量的遗传因素,我们在田间试验中测量了从179 cv Excalibur / Kukri F1衍生的单倍单倍体小麦植株的旗叶组织中提取的205种代谢物的丰度。终端干旱胁迫。另外,使用了在同一田间试验中评估的29个农艺性状的数据。线性混合模型用于划分和解释变异的非遗传和遗传来源,定量性状基因座分析用于估计基因组位置和单个定量性状基因座的影响。对农艺和代谢性状变异的比较发现某些农艺性状与某些主要代谢物水平之间存在新颖的相关性,这些代谢物包括与植物成熟度相关或谷物产量相关性状具有正向或负向关联的代谢物。我们的分析表明,影响农艺性状的小麦基因组的特定区域对代谢物的特定组合也有不同的影响。这种方法被证明对于鉴定干旱条件下小麦性能的新生物标记物非常有价值,并且可以促进鉴定参与面包小麦干旱相关反应的候选基因。

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