首页> 外文期刊>Theoretical and Applied Genetics: International Journal of Breeding Research and Cell Genetics >Improvement of lodging resistance with QTLs for stem diameter in rice (Oryza sativa L.).
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Improvement of lodging resistance with QTLs for stem diameter in rice (Oryza sativa L.).

机译:利用QTL提高水稻(Oryza sativa L.)茎直径的抗倒伏性。

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Varietal differences among ten rice cultivars showed that stem diameter is a key factor in lodging resistance (measured in terms of pushing resistance). Two near-isogenic lines (NILs) were selected from a series of chromosome segment substitution lines developed between cultivars Nipponbar and Kasalath, one containing a single stem diameter QTL (sdm8; NIL114), and another with four stem diameter QTLs (sdm1, sdm7, sdm8, sdm12; NIL28). Compared with the Nipponbare control, stem diameters were larger in NIL114 and NIL28 by about 7 and 39%, respectively. Pushing resistance in NIL28 was significantly greater than in Nipponbare, but NIL114 was similar to Nipponbare. The two NILs had greater weight of lower stem and culm wall thickness than Nipponbare. NIL28 had higher plant height, which is a negative effect on lodging resistance, than Nipponbare. The non-structural carbohydrate contents of NIL stems were higher than that of Nipponbare, whereas the silicon contents were lower in the NILs, and cellulose contents were lower only in NIL28. The basal internodes of the two NILs were significantly stiffer than those of Nipponbare. These results suggest that increasing stem diameter in rice breeding programs would improve lodging resistance, although the combination of multiple QTLs would be necessary to produce thicker stems with higher pushing resistance, whereas the higher plant height could also result from the combination of multiple QTLs.
机译:十个水稻品种之间的品种差异表明,茎直径是抗倒伏性的关键因素(以抗压性衡量)。从品种Nipponbar和Kasalath之间开发的一系列染色体片段替换系中选择了两个近等基因系(NIL),一个包含一个茎直径QTL(sdm8; NIL114),另一个包含四个茎直径QTL(sdm1,sdm7, sdm8,sdm12; NIL28)。与Nipponbare对照相比,NIL114和NIL28的茎直径分别增加了约7%和39%。 NIL28中的推入阻力显着大于Nipponbare,但NIL114与Nipponbare相似。与Nipponbare相比,这两个NIL的下茎和茎秆壁厚较低,重量更大。与日本晴相比,NIL28具有更高的株高,这对倒伏阻力具有负面影响。 NIL茎的非结构性碳水化合物含量高于日本晴,而NILs中的硅含量较低,仅NIL28中的纤维素含量较低。两个NIL的基节间明显比Nipponbare坚硬。这些结果表明,在水稻育种程序中增加茎直径将改善抗倒伏性,尽管将多个QTL组合以产生具有更高推挤阻力的较粗茎将是必要的,而将多个QTL组合也可导致更高的株高。

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