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Mapping QTL for Heat-Tolerance at Grain Filling Stage in Rice

机译:水稻籽粒灌浆期耐热性的QTL定位

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摘要

A mapping population of 98 lines (backcross inbred lines, BILs) derived from a backcross of Nipponbare/Kasalath//Nipponbare was planted at two experimental sites, Nanjing and Nanchang, and treated with high and optimal temperature during grain filling, respectively. The grain weight heat susceptibility index [GWHSI= (grain weight at optimum temperature-grain weight at high temperature) / grain weight at optimum temperature × 100] was employed to evaluate the tolerance of rice to heat stress. A genetic linkage map with 245 RFLP markers and a mixed linear-model approach was used to detect quantitative trait loci (QTLs) and their main effects, epistatic interactions and QTL × environment interactions (Q× E). The threshold of LOD score=2.0 was used to detect the significance of association between marker and trait. A total of 3 QTLs controlling heat tolerance during grain filling were detected, on chromosomes 1, 4 and 7, with LOD scores of 8.16, 11.08 and 12.86, respectively, and they explained the phenotypic variance of 8.94, 17.25 and 13.50 %, correspondingly. The QTL located in the C1100-R1783 region of chromosome 4 showed no QTL × environment interaction and epistatic effect, suggesting that it could be stably expressed in different environments and genetic backgrounds, and thus it would be valuable in rice breeding for heat tolerance improvement. This QTL allele, derived from Kasalath reduced 3.31% of the grain weight loss under heat stress. One located between R1613-C970 on chromosome 1 and the other between C1226-R1440 on chromosome 7, with additive effect 2.38 and 2.92%, respectively. The tolerance alleles of both these QTLs were derived from Nipponbare. Both of these QTLs had significant QTL × environment interactions, and the latter was involved in epistatic interaction also. Eight pairs of epistatic effect QTLs were detected, one pair each on chromosomes 1,2, 3, 5, 7,8, 10 and 12. The results could be useful for elucidating the genetic mechanism of heat-tolerance and the development of new rice varieties with heat tolerance during grain filling phase.
机译:将来自日本晴/ Kasalath //日本晴的回交的98系(回交自交系,BIL)作图种群种植在南京和南昌这两个实验点,并分别在灌浆过程中进行了高温和最佳温度处理。谷物热敏感性指数[GWHSI =(最佳温度下的谷物重量-高温下的谷物重量)/最佳温度下的谷物重量×100]用于评估大米对热胁迫的耐受性。使用具有245个RFLP标记和混合线性模型方法的遗传连锁图谱来检测数量性状位点(QTL)及其主要作用,上位相互作用和QTL×环境相互作用(Q×E)。 LOD得分的阈值= 2.0用于检测标志物与性状之间的关联的显着性。在1、4和7号染色体上共检测到3个控制籽粒灌浆期间耐热性的QTL,LOD分数分别为8.16、11.08和12.86,它们分别解释了表型变异为8.94%,17.25%和13.50%。位于4号染色体C1100-R1783区域的QTL无QTL×环境相互作用和上位性效应,表明它可以在不同的环境和遗传背景下稳定表达,因此对于提高耐热性在水稻育种中具有重要价值。来自Kasalath的QTL等位基因在热胁迫下减少了3.31%的谷物失重。一个位于染色体1上的R1613-C970之间,另一个位于染色体7上的C1226-R1440之间,分别具有2.38%和2.92%的累加效应。这两个QTL的耐受性等位基因均来自日本晴。这两个QTL均具有显着的QTL×环境相互作用,而后者也参与上位性相互作用。检测到八对上位效应QTL,每对分别位于1、2、3、5、7、8、10和12号染色体上。这些结果可用于阐明耐热性的遗传机制和新水稻的发育籽粒灌浆期具有耐热性的品种。

著录项

  • 来源
    《水稻科学(英文版)》 |2005年第1期|33-38|共6页
  • 作者

  • 作者单位

    State Key Laboratory of Crop Genetics and Germplasm Enhancement, Jiangsu Plant Gene Engineering Center, Nanjing Agricultural University, Nanjing 210095, China;

    State Key Laboratory of Crop Genetics and Germplasm Enhancement, Jiangsu Plant Gene Engineering Center, Nanjing Agricultural University, Nanjing 210095, China;

    State Key Laboratory of Crop Genetics and Germplasm Enhancement, Jiangsu Plant Gene Engineering Center, Nanjing Agricultural University, Nanjing 210095, China;

    State Key Laboratory of Crop Genetics and Germplasm Enhancement, Jiangsu Plant Gene Engineering Center, Nanjing Agricultural University, Nanjing 210095, China;

    Chinese Academy of Agricultural Sciences, Beijing 100081, China;

    State Key Laboratory of Crop Genetics and Germplasm Enhancement, Jiangsu Plant Gene Engineering Center, Nanjing Agricultural University, Nanjing 210095, China;

    Chinese Academy of Agricultural Sciences, Beijing 100081, China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 chi
  • 中图分类 农作物;
  • 关键词

    rice; grain filling; heat tolerance; quantitative trait locus;

    机译:水稻;籽粒灌浆;耐热性;数量性状位点;
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