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A New Dominant Gene E9 Conditions Early Flowering and Maturity in Soybean

机译:一个新的优势基因E9调节大豆的早期开花和成熟

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Adaptability of soybean [Glycine max (L.) Merr.] to a wide range of latitudes is attributed to the natural variation in the major genes and quantitative trait loci (QTL) that control flowering time and maturity. Identification of novel genes and understanding their molecular basis is critical to improving soybean productivity. We identified a new locus conditioning days to flowering and maturity that was detected in hybrid progeny between cultivated and wild soybeans. A backcross was made between the recurrent parent Tokei 780 and two early-flowering recombinant inbred lines (RILs; from the cross Tokei 780 x Hidaka 4, a wild soybean accession, all of which possessed an identical genotype at the major four maturity loci, E1 to E4). The segregation patterns observed in the F-2 and F-3 progeny derived from the two crosses revealed that early-flowering was controlled by a single dominant gene. The gene was fine-mapped to a 245-kb interval between markers M5 and M7 on Gm16. A tagging marker ID1 was significantly associated with the variation in days to flowering (0.82, p 0.01) and maturity (0.76, p 0.01) in the F-2 population. The new early-flowering gene and its tagging marker are very useful for molecular breeding towards early maturity and stable productivity of soybean under high-latitude environments. The gene symbol E9e9 has been assigned. E9E9 results in early maturity and e9e9 results in late maturity.
机译:大豆[Glycine max(L.)Merr。]对多种纬度的适应性归因于主要基因的自然变异和控制开花时间和成熟度的数量性状基因座(QTL)。鉴定新基因并了解其分子基础对提高大豆产量至关重要。我们确定了在栽培和野生大豆之间杂交后代中检测到的开花和成熟的新基因座条件天。在轮回亲本Tokei 780和两个早开花的重组近交系(RILs)之间进行了回交,这些交配的Tokei 780 x Hidaka 4是野生大豆,在四个主要的成熟位点E1上均具有相同的基因型至E4)。在两个杂交后代的F-2和F-3后代中观察到的分离模式表明,早期开花受单个显性基因控制。该基因被精细映射到Gm16上标记M5和M7之间的245-kb间隔。标记ID1与F-2群体的开花天数(0.82,p <0.01)和成熟度(0.76,p <0.01)显着相关。新的早开花基因及其标签标记对于分子育种在高纬度环境下大豆的早熟和稳定生产力非常有用。基因符号E9e9已被分配。 E9E9导致较早到期,e9e9导致较晚到期。

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