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A Genetic Relationship between Phosphorus Efficiency and Photosynthetic Traits in Soybean As Revealed by QTL Analysis Using a High-Density Genetic Map

机译:高密度遗传图谱QTL分析显示大豆磷效率与光合特性的遗传关系

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摘要

Plant productivity relies on photosynthesis, and the photosynthetic process relies on phosphorus (P). The genetic basis of photosynthesis and P efficiency (PE) affecting yield has been separately characterized in various crop plants. However, the genetic relationship between PE and photosynthesis remains to be elucidated. In this study, we used a combined analysis of phenotypic correlation, linkage mapping, and expression analysis to dissect the relationship between PE and photosynthesis. We found significant phenotypic correlations between PE and photosynthetic related traits, particularly under low P stress. A total of 172 QTLs for both traits were detected and classified into 29 genomic regions. 12 (41.4%) of 29 regions were detected to be associated with both PE and photosynthetic related traits. Three major QTLs, q14-2, q15-2, and q19-2, were found to be associated with both traits and explained 6.6–58.9% of phenotypic variation. A photosynthetic-specific QTL cluster, q12-1, was detected under both normal and low P conditions, suggesting that genes responsible for this region were less effected by low P stress, and could be used in high photosynthetic efficiency breeding programs. In addition, several candidate genes with significantly differential expression upon low P stress, such as a purple acid phosphatase gene (Glyma.19G193900) within q19-2 region, were considered as promising candidates involved in regulating both soybean PE and photosynthetic capacity. Our results reveal a significant genetic relationship between PE and photosynthetic traits, and uncover several major genomic regions specific or common to these traits. The markers linked closely to these major QTLs may be used for selection of soybean varieties with improved P efficiency and photosynthetic capacity.
机译:植物生产力依赖于光合作用,而光合作用过程依赖于磷(P)。在各种农作物中已经分别表征了光合作用的遗传基础和影响产量的磷效率(PE)。然而,PE与光合作用之间的遗传关系仍有待阐明。在这项研究中,我们使用了表型相关性,连锁映射和表达分析的组合分析来剖析PE与光合作用之间的关系。我们发现PE与光合相关性状之间存在显着的表型相关性,特别是在低P胁迫下。共检测到两个性状的172个QTL,并将其分为29个基因组区域。检测到29个区域中有12个(41.4%)与PE和光合相关性状均相关。发现三个主要的QTL,q14-2,q15-2和q19-2与这两个性状相关,并解释了表型变异的6.6-58.9%。在正常和低磷条件下均检测到一个光合特异性QTL簇q12-1,表明负责该区域的基因受低磷胁迫影响较小,可用于高光合效率育种计划。此外,一些低磷胁迫下具有显着差异表达的候选基因,例如q19-2区域内的紫色酸性磷酸酶基因(Glyma.19G193900),被认为是参与调控大豆PE和光合能力的有前途的候选基因。我们的结果揭示了PE和光合性状之间的重要遗传关系,并揭示了这些性状特有或共有的几个主要基因组区域。与这些主要QTL紧密相关的标记可用于选择具有更高P效率和光合能力的大豆品种。

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