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首页> 外文期刊>BMC Plant Biology >Construction of high-density linkage maps for mapping quantitative trait loci for multiple traits in field pea ( Pisum sativum L.)
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Construction of high-density linkage maps for mapping quantitative trait loci for multiple traits in field pea ( Pisum sativum L.)

机译:用于在豌豆(Pisum Sativum L.)中绘制定量特性基因座的高密度连杆地图的构建

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The objective of this research was to map quantitative trait loci (QTLs) of multiple traits of breeding importance in pea (Pisum sativum L.). Three recombinant inbred line (RIL) populations, PR-02 (Orb x CDC Striker), PR-07 (Carerra x CDC Striker) and PR-15 (1–2347-144 x CDC Meadow) were phenotyped for agronomic and seed quality traits under field conditions over multiple environments in Saskatchewan, Canada. The mapping populations were genotyped using genotyping-by-sequencing (GBS) method for simultaneous single nucleotide polymorphism (SNP) discovery and construction of high-density linkage maps. After filtering for read depth, segregation distortion, and missing values, 2234, 3389 and 3541 single nucleotide polymorphism (SNP) markers identified by GBS in PR-02, PR-07 and PR-15, respectively, were used for construction of genetic linkage maps. Genetic linkage groups were assigned by anchoring to SNP markers previously positioned on these linkage maps. PR-02, PR-07 and PR-15 genetic maps represented 527, 675 and 609 non-redundant loci, and cover map distances of 951.9, 1008.8 and 914.2?cM, respectively. Based on phenotyping of the three mapping populations in multiple environments, 375 QTLs were identified for important traits including days to flowering, days to maturity, lodging resistance, Mycosphaerella blight resistance, seed weight, grain yield, acid and neutral detergent fiber concentration, seed starch concentration, seed shape, seed dimpling, and concentration of seed iron, selenium and zinc. Of all the QTLs identified, the most significant in terms of explained percentage of maximum phenotypic variance (PVmax) and occurrence in multiple environments were the QTLs for days to flowering (PVmax?=?47.9%), plant height (PVmax?=?65.1%), lodging resistance (PVmax?=?35.3%), grain yield (PVmax?=?54.2%), seed iron concentration (PVmax?=?27.4%), and seed zinc concentration (PVmax?=?43.2%). We have identified highly significant and reproducible QTLs for several agronomic and seed quality traits of breeding importance in pea. The QTLs identified will be the basis for fine mapping candidate genes, while some of the markers linked to the highly significant QTLs are useful for immediate breeding applications.
机译:本研究的目的是映射多种性状的定量特性位点(QTLS)在豌豆(Pisum Sativum L)中的多种性状。三种重组近交系(RIL)群,PR-02(ORB X CDC尖塔),PR-07(Carerra X CDC击球手)和PR-15(1-2347-144×CDC草甸)是农艺和种子质量特征的表型在加拿大萨斯喀彻温省的多种环境下的现场条件下。使用基因分型逐序列(GBS)方法进行基因分型,用于同时单核苷酸多态性(SNP)发现和高密度连杆地图的构建。在过滤读取深度后,分别在PR-02,PR-07和PR-15中鉴定的偏析变形和缺失值,2234,3389和3541个单核苷酸多态性(SNP)标记物,PR-07和PR-15鉴定,用于构建遗传联系地图。通过锚固到先前定位在这些连杆地图上的SNP标记物中来分配遗传连锁基团。 PR-02,PR-07和PR-15遗传贴图表示为527,675和609非冗余基因座,覆盖951.9,1008.8和914.2Ω·厘米的地图距离。基于多种环境中的三种测绘群体的表型,鉴定了375个QTL,以包括开花,天数,成熟,抗性,菌丘疹枯燥,种子重量,籽粒产量,酸和中性洗涤剂纤维浓度,种子淀粉浓缩,种子形状,种子凹陷和种子铁,硒和锌的浓度。在所有鉴定的QTL中,在解释的最大表型方差(PVMAX)百分比和多种环境中发生的最重要的是QTLS达到开花的天数(PVMAX?= 47.9%),植物身高(PVMAX?=?65.1 %),封装抗性(Pvmax?= 35.3%),籽粒产率(Pvmax?= 54.2%),种子铁浓度(pvmax?=Δ27.4%),以及种子锌浓度(pvmax?= 43.2%)。我们为豌豆育种重要性的几种农艺和种子质量特征识别出高度重要和可重复的QTL。鉴定的QTLS将是精细映射候选基因的基础,而链接到高度重要的QTL的一些标记对于立即育种应用是有用的。

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