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Dissecting the genetic architecture of frost tolerance in Central European winter wheat.

机译:剖析中欧冬小麦耐寒性的遗传结构。

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Abiotic stress tolerance in plants is pivotal to increase yield stability, but its genetic basis is still poorly understood. To gain insight into the genetic architecture of frost tolerance, this work evaluated a large mapping population of 1739 wheat (Triticum aestivum L.) lines and hybrids adapted to Central Europe in field trials in Germany and fingerprinted the lines with a 9000 single-nucleotide polymorphism array. Additive effects prevailed over dominance effects. A two-dimensional genome scan revealed the presence of epistatic effects. Genome-wide association mapping in combination with a robust cross-validation strategy identified one frost tolerance locus with a major effect located on chromosome 5 B. This locus was not in linkage disequilibrium with the known frost loci Fr-B1 and Fr-B2. The use of the detected diagnostic markers on chromosome 5 B, however, does not allow prediction of frost tolerance with high accuracy. Application of genome-wide selection approaches that take into account also loci with small effect sizes considerably improved prediction of the genetic variation of frost tolerance in wheat. The developed prediction model is valuable for improving frost tolerance because this trait displays a wide variation in occurrence across years and is therefore a difficult target for conventional phenotypic selection.Digital Object Identifier http://dx.doi.org/10.1093/jxb/ert259
机译:植物中的非生物胁迫耐受性对于提高产量稳定性至关重要,但其遗传基础仍知之甚少。为了深入了解抗冻性的遗传结构,这项工作在德国的田间试验中评估了适合中欧的大量1739小麦(Triticum aestivum L.)品系和杂种的作图种群,并用9000个单核苷酸多态性对品系进行了指纹识别数组。加性效应高于优势效应。二维基因组扫描揭示了上位效应的存在。全基因组关联映射与强大的交叉验证策略相结合,确定了一个在5 B号染色体上具有重要作用的抗霜基因座。该基因座与已知的霜基因座Fr-B1和Fr-B2没有连锁不平衡。但是,使用在染色体5 B上检测到的诊断标记不能准确预测霜冻的耐受性。全基因组选择方法的应用也考虑到了小效应位点,大大改善了小麦抗冻性遗传变异的预测。所开发的预测模型对于提高抗霜冻能力非常有价值,因为该特征显示多年以来发生的变化很大,因此对于传统的表型选择来说是一个困难的目标。数字对象标识符http://dx.doi.org/10.1093/jxb/ert259

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