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High-throughput SNP genotyping in Cucurbita pepo for map construction and quantitative trait loci mapping

机译:西葫芦的高通量SNP基因分型,用于地图构建和数量性状基因座定位

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Background Cucurbita pepo is a member of the Cucurbitaceae family, the second- most important horticultural family in terms of economic importance after Solanaceae. The "summer squash" types, including Zucchini and Scallop, rank among the highest-valued vegetables worldwide. There are few genomic tools available for this species. The first Cucurbita transcriptome, along with a large collection of Single Nucleotide Polymorphisms (SNP), was recently generated using massive sequencing. A set of 384 SNP was selected to generate an Illumina GoldenGate assay in order to construct the first SNP-based genetic map of Cucurbita and map quantitative trait loci (QTL). Results We herein present the construction of the first SNP-based genetic map of Cucurbita pepo using a population derived from the cross of two varieties with contrasting phenotypes, representing the main cultivar groups of the species' two subspecies: Zucchini (subsp. pepo) × Scallop (subsp. ovifera). The mapping population was genotyped with 384 SNP, a set of selected EST-SNP identified in silico after massive sequencing of the transcriptomes of both parents, using the Illumina GoldenGate platform. The global success rate of the assay was higher than 85%. In total, 304 SNP were mapped, along with 11 SSR from a previous map, giving a map density of 5.56 cM/marker. This map was used to infer syntenic relationships between C. pepo and cucumber and to successfully map QTL that control plant, flowering and fruit traits that are of benefit to squash breeding. The QTL effects were validated in backcross populations. Conclusion Our results show that massive sequencing in different genotypes is an excellent tool for SNP discovery, and that the Illumina GoldenGate platform can be successfully applied to constructing genetic maps and performing QTL analysis in Cucurbita. This is the first SNP-based genetic map in the Cucurbita genus and is an invaluable new tool for biological research, especially considering that most of these markers are located in the coding regions of genes involved in different physiological processes. The platform will also be useful for future mapping and diversity studies, and will be essential in order to accelerate the process of breeding new and better-adapted squash varieties.
机译:背景西葫芦属葫芦科(Cucurbitaceae)家族,就经济重要性而言,葫芦科是仅次于茄科的第二重要的园艺家族。西葫芦和扇贝等“西葫芦”类型是全球价值最高的蔬菜之一。该物种的基因组学工具很少。最近使用大规模测序生成了第一个南瓜转录组,以及大量的单核苷酸多态性(SNP)。选择了一组384个SNP来生成Illumina GoldenGate分析,以便构建第一个基于SNP的南瓜属遗传图谱并绘制定量性状基因座(QTL)。结果我们在此使用来自两个具有相反表型的变种的种群的种群,构建了第一个基于SNP的南瓜属遗传图谱,该种群代表了该物种两个亚种的主要栽培品种群:西葫芦(亚种)扇贝(卵子亚种)。使用Illumina GoldenGate平台对两个亲本的转录组进行大规模测序后,通过384 SNP(在计算机上鉴定出的一组选定的EST-SNP)对作图群体进行基因分型。该测定法的总体成功率高于85%。总共绘制了304个SNP,以及先前地图中的11个SSR,得到的地图密度为5.56 cM /标记。该图被用来推断C. pepo和黄瓜之间的同系关系,并成功地绘制了控制有利于南瓜育种的植物,开花和果实性状的QTL。在回交群体中验证了QTL效应。结论我们的结果表明,不同基因型的大规模测序是发现SNP的绝佳工具,Illumina GoldenGate平台可成功用于构建基因图谱并在南瓜属中进行QTL分析。这是南瓜属中第一个基于SNP的遗传图谱,并且是生物学研究的宝贵新工具,尤其是考虑到这些标记中的大多数位于不同生理过程所涉及的基因的编码区中。该平台对于将来的作图和多样性研究也将是有用的,并且对于加速培育新的和适应性更好的南瓜品种的过程将是必不可少的。

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