首页> 美国卫生研究院文献>other >Mapping Quantitative Trait Loci Controlling High Iron and Zinc Content in Self and Open Pollinated Grains of Pearl Millet Pennisetum glaucum (L.) R. Br.
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Mapping Quantitative Trait Loci Controlling High Iron and Zinc Content in Self and Open Pollinated Grains of Pearl Millet Pennisetum glaucum (L.) R. Br.

机译:定位控制小米自交和开放授粉籽粒中高铁和锌含量的定量性状位点Pennestum glaucum(L.)R. Br。

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摘要

Pearl millet is a multipurpose grain/fodder crop of the semi-arid tropics, feeding many of the world’s poorest and most undernourished people. Genetic variation among adapted pearl millet inbreds and hybrids suggests it will be possible to improve grain micronutrient concentrations by selective breeding. Using 305 loci, a linkage map was constructed to map QTLs for grain iron [Fe] and zinc [Zn] using replicated samples of 106 pearl millet RILs (F6) derived from ICMB 841-P3 × 863B-P2. The grains of the RIL population were evaluated for Fe and Zn content using atomic absorption spectrophotometer. Grain mineral concentrations ranged from 28.4 to 124.0 ppm for Fe and 28.7 to 119.8 ppm for Zn. Similarly, grain Fe and Zn in open pollinated seeds ranged between 22.4–77.4 and 21.9–73.7 ppm, respectively. Mapping with 305 (96 SSRs; 208 DArT) markers detected seven linkage groups covering 1749 cM (Haldane) with an average intermarker distance of 5.73 cM. On the basis of two environment phenotypic data, two co-localized QTLs for Fe and Zn content on linkage group (LG) 3 were identified by composite interval mapping (CIM). Fe QTL explained 19% phenotypic variation, whereas the Zn QTL explained 36% phenotypic variation. Likewise for open pollinated seeds, the QTL analysis led to the identification of two QTLs for grain Fe content on LG3 and 5, and two QTLs for grain Zn content on LG3 and 7. The total phenotypic variance for Fe and Zn QTLs in open pollinated seeds was 16 and 42%, respectively. Analysis of QTL × QTL and QTL × QTL × environment interactions indicated no major epistasis.
机译:珍珠粟是半干旱热带地区的一种多用途谷物/饲料作物,为世界上许多最贫困和营养不良的人们提供了食物。适应的珍珠粟自交系和杂种的遗传变异表明,可以通过选择性育种提高谷物微量营养素的浓度。使用305个基因座,使用衍生自ICMB 841-P3×863B-P2的106个珍珠小米RIL(F6)的重复样品,构建了连锁图以绘制谷物铁[Fe]和锌[Zn]的QTL。使用原子吸收分光光度计评估RIL种群的晶粒中的铁和锌含量。铁的颗粒矿物质浓度范围为28.4至124.0 ppm,锌的颗粒矿物质浓度范围为28.7至119.8 ppm。同样,开放授粉的种子中的铁和锌分别介于22.4-77.4和21.9-73.7 ppm之间。使用305个标记(96个SSR; 208个DArT)进行的作图检测到七个连锁组,覆盖1749 cM(Haldane),平均标记间距离为5.73 cM。根据两个环境表型数据,通过复合区间作图法(CIM)鉴定了两个在连锁群(LG)3上铁和锌含量共定位的QTL。 Fe QTL解释了19%的表型变异,而Zn QTL解释了36%的表型变异。同样,对于开放授粉的种子,通过QTL分析,鉴定出LG3和5上的两个籽粒Fe含量的QTL和LG3和7上的两个锌含量的QTL。开放授粉的种子中Fe和Zn QTL的总表型变异分别是16%和42%。 QTL×QTL和QTL×QTL×环境相互作用的分析表明没有重大的上位性。

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