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Detection of QTLs for Yield Heterosis in Rice Using a RIL Population and Its Testcross Population

机译:利用RIL群体检测水稻产量杂种优势的QTL及其研究

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摘要

Analysis of the genetic basis of yield heterosis in rice was conducted by quantitative trait locus mapping using a set of 204 recombinant inbred lines (RILs), its testcross population, and mid-parent heterosis dataset (HMP). A total of 39 QTLs for six yield traits were detected, of which three were detected in all the datasets, ten were common to the RIL and testcross populations, six were common to the testcross and HMP, and 17, 2, and 1 were detected for RILs, testcrosses, and HMP, respectively. When a QTL was detected in both the RIL and testcross populations, the difference between TQ and IR24 and that between Zh9A/TQ and Zh9A/IR24 were always in the same direction, providing the potential to increase the yield of hybrids by increasing the yield of parental lines. Genetic action mode of the 39 QTLs was inferred by comparing their performances in RILs, testcrosses, and HMP. The genetic modes were additive for 17 QTLs, dominance for 12 QTLs, and overdominance for 10 QTLs. These results suggest that dominance and overdominance are the most important contributor to yield heterosis in rice, in which the accumulative effects of yield components play an important role.
机译:在水稻产量杂种优势的遗传基础的分析是使用一组204个重组近交系(RIL),其测交人口,和中亲优势数据集(HMP)由数量性状基因座的映射进行。共有39个QTL六个产量性状进行检测,其中在所有被检测到三个数据集,10是共同的所述RIL和测交群体,六是共同的测交和HMP,和17,图2和检测1对于重组自交系,测交和HMP,分别。当QTL在RIL和测交群二者中检测到,TQ和IR24之间和该差Zh9A / TQ和Zh9A / IR24之间总是在相同的方向,提供了潜在的通过增加的产率,以增加杂交体的产率亲本系。 39个QTL的遗传作用方式是通过在重组自交系,测交和HMP比较他们的表现推断。遗传模式是相加为17点的QTL,显性12点的QTL,并超显性10点的QTL。这些结果表明,显性和超显性是水稻最重要的贡献者产量优势,其中产量构成因素的累积效应发挥了重要作用。

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