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Detection of quantitative trait loci controlling pre-harvest sprouting resistance by using backcrossed populations of japonica rice cultivars

机译:利用粳稻品种回交群体检测控制收获前抗性的数量性状基因座

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摘要

Backcrossed inbred lines (BILs) and a set of reciprocal chromosome segment substitution lines (CSSLs) derived from crosses between japonica rice cultivars Nipponbare and Koshihikari were used to detect quantitative trait loci (QTLs) for pre-harvest sprouting resistance. In the BILs, we detected one QTL on chromosome 3 and one QTL on chromosome 12. The QTL on the short arm of chromosome 3 accounted for 45.0% of the phenotypic variance and the Nipponbare allele of the QTL increased germination percentage by 21.3%. In the CSSLs, we detected seven QTLs, which were located on chromosomes 2, 3 (two), 5, 8 and 11 (two). All Nipponbare alleles of the QTLs were associated with an increased rate of germination. The major QTL for pre-harvest sprouting resistance on the short arm of chromosome 3 was localized to a 474-kbp region in the Nipponbare genome by the SSR markers RM14240 and RM14275 by using 11 substitution lines to replace the different short chromosome segments on chromosome 3. This QTL co-localized with the low-temperature germinability gene qLTG3-1. The level of germinability under low temperature strongly correlated with the level of pre-harvest sprouting resistance in the substitution lines. Sequence analyses revealed a novel functional allele of qLTG3-1 in Nipponbare and a loss-of-function allele in Koshihikari. The allelic difference in qLTG3-1 between Nipponbare and Koshihikari is likely to be associated with differences in both pre-harvest sprouting resistance and low-temperature germinability.Electronic supplementary materialThe online version of this article (doi:10.1007/s00122-010-1275-z) contains supplementary material, which is available to authorized users.
机译:从粳稻品种Nipponbare和Koshihikari的杂交中获得的回交自交系(BIL)和一组相互的染色体片段替代系(CSSL)用于检测定量性状基因座(QTL),以进行收获前的发芽抗性。在BIL中,我们在3号染色体上检测到一个QTL,在12号染色体上检测到一个QTL。3号染色体短臂上的QTL占表型变异的45.0%,而QTL的Nipponbare等位基因使发芽率提高了21.3%。在CSSL中,我们检测到七个QTL,它们位于2、3(两个),5、8和11(两个)染色体上。 QTL的所有Nipponbare等位基因与发芽率增加相关。 SSR标记RM14240和RM14275通过使用11条替换系替换3号染色体上不同的短染色体片段,将3号染色体短臂上主要的收获前发芽抗性主要QTL定位于Nipponbare基因组中的474-kbp区域。该QTL与低温发芽基因qLTG3-1共定位。低温下的萌发水平与替代品系中收获前的发芽抗性水平密切相关。序列分析揭示了在日本晴中新的qLTG3-1功能等位基因和在越光中的功能缺失等位基因。 Nipponbare和Koshihikari之间的qLTG3-1等位基因差异可能与收获前发芽抗性和低温发芽力的差异有关。电子补充材料本文的在线版本(doi:10.1007 / s00122-010-1275- z)包含补充材料,授权用户可以使用。

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