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Extensive genomic characterization of a set of near-isogenic lines for heterotic QTL in maize (Zea mays L.)

机译:玉米杂种QTL的一组近等基因系的广泛基因组表征

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Background Despite the crucial role that heterosis has played in crop improvement, its genetic and molecular bases are still elusive. Several types of structured populations were used to discover the genetic architecture underlying complex phenotypes, and several QTL related to heterosis were detected. However, such analyses generally lacked the statistical power required for the detailed characterization of individual QTL. Currently, QTL introgression into near-isogenic materials is considered the most effective strategy to this end, despite such materials inevitably contain a variable, unknown and undesired proportion of non-isogenic genome. An introgression program based on residual heterozygous lines allowed us to develop five pairs of maize (Zea mays L.) near-isogenic lines (NILs) suitable for the fine characterization of three major heterotic QTL previously detected. Here we describe the results of the detailed genomic characterization of these NILs that we undertook to establish their genotypic structure, to verify the presence of the expected genotypes within target QTL regions, and to determine the extent and location of residual non-isogenic genomic regions. Results The SNP genotyping approach allowed us to determine the parent-of-origin allele for 14,937 polymorphic SNPs and to describe in detail the genotypic structure of all NILs. The correct introgression was confirmed for all target QTL in the respective NIL and several non-isogenic regions were detected genome-wide. Possible linkage drag effects associated to the specific introgressed regions were observed. The extent and position of other non-isogenic regions varied among NIL pairs, probably deriving from random segregating sections still present at the separation of lineages within pairs. Conclusions The results of this work strongly suggest that the actual isogenicity and the genotypic architecture of near-isogenic materials should be monitored both during the introgression procedure and on the final materials as a paramount requisite for a successful mendelization of target QTL. The information here gathered on the genotypic structure of NILs will be integrated in future experimental programs aimed at the fine mapping and isolation of major heterotic QTL, a crucial step towards the understanding of the molecular bases of heterosis in maize.
机译:背景尽管杂种优势在作物改良中起着至关重要的作用,但其遗传和分子基础仍然难以捉摸。几种类型的结构化种群被用来发现复杂表型的遗传结构,并检测了与杂种优势相关的几个QTL。但是,此类分析通常缺乏详细表征单个QTL所需的统计能力。目前,将QTL渗入近等基因材料被认为是为此目的最有效的策略,尽管此类材料不可避免地包含可变,未知和不希望的非等基因基因组比例。基于残基杂合品系的基因渗入程序使我们能够开发出五对玉米(等位基因)近等基因系(NIL),适合于先前检测到的三个主要杂种QTL的精细表征。在这里,我们描述了这些NIL的详细基因组学表征的结果,我们将通过这些结果来建立它们的基因型结构,以验证目标QTL区域内预期基因型的存在,并确定残留的非同基因组区域的范围和位置。结果SNP基因分型方法使我们能够确定14937个多态性SNP的起源父本等位基因,并详细描述了所有NIL的基因型结构。确认了各个NIL中所有靶QTL的正确基因渗入,并且在全基因组范围内检测到了几个非等基因区域。观察到可能与特定渗入区域相关的连锁拖曳效应。 NIL对之间其他非等基因区域的范围和位置可能有所不同,这可能是由于仍然存在于成对的谱系分离中的随机分离区域所致。结论这项工作的结果强烈建议,在渐渗过程中和最终材料上均应监测近等基因材料的实际同质性和基因型结构,这是成功QTL靶标化的首要条件。这里收集的有关NILs基因型结构的信息将被整合到未来的实验计划中,这些计划旨在精细定位和分离主要的杂种QTL,这是理解玉米杂种优势分子基础的关键一步。

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