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首页> 外文期刊>Molecular Breeding >Detection and integration of quantitative trait loci for grain yield components and oil content in two connected recombinant inbred line populations of high-oil maize
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Detection and integration of quantitative trait loci for grain yield components and oil content in two connected recombinant inbred line populations of high-oil maize

机译:两个高油玉米重组近交自交系群体籽粒产量成分和含油量数量性状基因座的检测与整合

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摘要

Improvement in grain yield is an important objective in high-oil maize breeding. In this study, one high-oil maize inbred was crossed with two normal maize inbreds to produce two connected recombinant inbred line (RIL) populations with 282 and 263 F7:8 families, respectively. The field experiments were conducted under four environments, and eight grain yield components and grain oil content were evaluated. Two genetic linkage maps were constructed using 216 and 208 polymorphic SSR markers. Quantitative trait loci (QTL) were detected for all traits under each environment and in combined analysis. Meta-analysis was used to integrate genetic maps and detected QTL in both populations. A total of 199 QTL were detected, 122 in population 1 and 87 in population 2. Seven, 11 and 19 QTL showed consistency across five environments, across two RIL populations and with respective F2:3 generations, respectively. 183 QTL were integrated in 28 meta-QTL (mQTL). QTL with contributions over 15% were consistently detected in 3–4 cases and integrated in mQTL. Each mQTL included 3–19 QTL related to 1–4 traits, reflecting remarkable QTL co-location for grain yield components and oil content. Further research and marker-assisted selection (MAS) should be concentrated on 37 consistent QTL and four genetic regions of mQTL with more than 10 QTL at bins 3.04–3.05, 7.02, 8.04–8.05 and 9.04–9.05. Near-isogenic lines for 100-grain-weight QTL at bin 7.02–7.03, for ear-length QTL at bin 7.02–7.03 and for rows-per-ear QTL at bin 3.08 are now in construction using MAS. Co-located candidate genes could facilitate the identification of candidate genes for grain yield in maize.
机译:提高谷物产量是高油玉米育种的重要目标。在这项研究中,将一个高油玉米自交系与两个正常玉米自交系杂交,以产生两个分别具有282和263 F7:8 家族的重组近交自交系(RIL)种群。在四种环境下进行了田间试验,并评估了八种谷物的产量成分和谷物油含量。使用216和208多态性SSR标记构建了两个遗传连锁图谱。在每种环境下并在组合分析中检测了所有性状的数量性状基因座(QTL)。荟萃分析用于整合遗传图谱和两个人群中检测到的QTL。总共检测到199个QTL,1个种群中有122个QTL,2个种群中有87个QTL。七个,11个和19个QTL在五个环境中,两个RIL种群以及各自的F2:3 世代表现出一致性。 183个QTL被集成到28个元QTL(mQTL)中。在3–4例病例中始终检测到贡献超过15%的QTL,并将其整合到mQTL中。每个mQTL包括与1-4个性状相关的3-19个QTL,反映出谷物产量成分和含油量的显着QTL并置。进一步的研究和标记辅助选择(MAS)应该集中在37个一致的QTL和mQTL的四个遗传区域,其中10个QTL位于3.04-3.05、7.02、8.04-8.05和9.04-9.05。现在正在使用MAS构造100重量级QTL在7.02-7.03处的近等基因谱系,耳长QTL在7.02-7.03处的穗状QTL和每耳行QTL在3.08处的近等基因谱系。并列的候选基因可以促进玉米籽粒产量候选基因的鉴定。

著录项

  • 来源
    《Molecular Breeding》 |2012年第2期|p.313-333|共21页
  • 作者单位

    College of Agriculture, Henan Agricultural College, 95 Wenhua Rd, Zhengzhou, China;

    College of Agriculture, Henan Agricultural College, 95 Wenhua Rd, Zhengzhou, China;

    College of Agriculture, Henan Agricultural College, 95 Wenhua Rd, Zhengzhou, China;

    College of Agriculture, Henan Agricultural College, 95 Wenhua Rd, Zhengzhou, China;

    College of Agriculture, Henan Agricultural College, 95 Wenhua Rd, Zhengzhou, China;

    College of Agriculture, Henan Agricultural College, 95 Wenhua Rd, Zhengzhou, China;

    College of Agriculture, Henan Agricultural College, 95 Wenhua Rd, Zhengzhou, China;

    College of Agriculture, Henan Agricultural College, 95 Wenhua Rd, Zhengzhou, China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    High-oil maize; Grain yield components; Grain oil content; QTL consistency; Meta-QTL analysis; Co-location;

    机译:高油玉米;籽粒产量构成;籽粒含油量;QTL一致性;Meta-QTL分析;同位;

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