小麦品种烟农999高产遗传基础解析
作者:
作者单位:

1.山东省烟台市农业科学研究院,烟台 265500;2.烟台大学生命科学学院,烟台 264005;3.鲁东大学农学院/山东省高等学校作物高产抗逆分子模块重点实验室, 烟台 264025;4.烟台市土地储备和利用中心,烟台264003

作者简介:

研究方向为小麦数量遗传学及分子生物学, E-mail: 630421527@qq.com;

通讯作者:

崔法,研究方向为小麦数量遗传学、基因组学及分子育种, E-mail: sdaucf@126.com

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基金项目:

国家自然科学基金(31871612);山东省高等学校“青创科技计划”(2019KJF002);烟台市科技计划项目(2020XCZX045);山东省小麦产业技术体系项目(SDAIT-01-02);泰山产业领军人才工程(TSCY202211144)


Unlocking the Genetic Basis of High-yield Wheat Variety Yannong 999
Author:
Affiliation:

1.Yantai Academy of Agricultural Sciences, Shandong Province, Yantai 265500;2.College of Life Sciences, Yantai University, Yantai 264005;3.School of Agriculture, Ludong University/ Key Laboratory of Molecular Module-Based Breeding of High Yield and Abiotic Resistant Plants in Universities of Shandong, Yantai 264025;4.Yantai Land Reserve and Utilization Center, Yantai 264003

Fund Project:

Foundation projects: National Natural Science Foundation of China (31871612); Youth Innovation Science and Technology Program of the University in Shandong Province (2019KJF002); Yantai Science and Technology Planning Project (2020XCZX045); Shandong Wheat Industry Technology System Project(SDAIT-01-02); Taishan Industrial Experts Program (TSCY202211144)

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    摘要:

    小麦品种烟农999具有高产、稳产、广适等特性,明确烟农999的遗传特性,挖掘其高产关键区段,可为烟农999育种及生产应用提供理论支撑。本研究利用55K小麦SNP芯片对烟农999及其46份衍生品种(系)、243份育成的小麦品种(系)为材料组成的自然群体进行了全基因组基因型鉴定,解析了其关键育种选择区段及其遗传效应,基于产量三要素优异等位基因位点组成系统解析了其高产形成的关键遗传基础。表型结果表明,烟农999高千粒重优异性状在其后代中得以优先选择保留。46份烟农999衍生品种(系)平均遗传相似系数为0.87。在全基因组水平,烟农999对F3、F5、F6及F7以上衍生品系遗传贡献率分别为84.94%、86.19%、86.67%和87.65%。46份烟农999衍生品种(系)中共检测到222个传递率在95%以上的烟农999高频率选择区段,长度变幅为5.04~108.75 Mb,其中2A包含高频率选择区段总长度最长,约为483.37 Mb;7D最短,约为13.84 Mb。222个高频率选择区段内包含135个已知的与产量性状相关的QTL,其中A基因组为80个,B和D基因组分别为48个和7个。基于自然群体单标记QTL分析共检测到1195个控制单株产量、267个控制穗粒数、790个控制千粒重和678个控制单株穗数的显著性关联SNP位点,其中烟农999基因型为增效的位点占比分别为84.02%、51.69%、94.18%和13.42%,说明烟农999已富集了单株产量和千粒重优异等位基因位点,是其高产、稳产的重要遗传基础。本研究为烟农999的分子育种亲本应用与烟农999高产基因挖掘提供理论参考。

    Abstract:

    Wheat variety Yannong 999 (YN999) shows stably high yield potential with strong environment adaptability. Unlocking its genetic basis and key chromosomal regions underlying high yield performance will provide theoretical support for the further application. In this study, a 55K wheat SNP array was used for genotyping the YN999, its 46 derived varieties (lines) and a natural mapping population containing 243 wheat varieties (lines). The genetic effects of the key chromosomal segments undergone strong selection was elucidated. The genetic cause of high-yielding potential in YN999 was dissected based on the composition of excellent alleles underlying the three yield components. The characteristics of high thousand kernel weight were preferentially selected and present in the derived varieties (lines). Genotyping using the wheat 55K SNP array revealed that the average genetic similarity coefficient of YN999 if compared to 46 derived varieties (lines) was 0.87. The genetic contribution of YN999 to its derived varieties (lines) of F3, F5, F6 and F7 were 84.94%, 86.19%, 86.67% and 87.65%, respectively. A total of 222 segments of YN999 with over 95% transmission rate were detected in the offspring of YN999, and the length of the segment varied from 5.04 Mb to 108.75 Mb, among which 2A contained the longest segment with high frequency selection, being 483.37 Mb, and 7D contained the shortest of 13.84 Mb. A total of 135 identified QTL related to yield traits were coincided with the 222 high-frequency selection regions, with 80, 48 and 7 QTL in the A, B and D genome, respectively. A total of 1195, 267, 790 and 678 significant SNPs, which were correlated with yield per plant, kernel number per spike, 1000-grain weight and spike number per plant, respectively, were detected by single marker QTL analysis using a natural mapping population. Among those, approximately 84.02%, 51.69%, 94.18% and 13.42% alleles contributing to the higher yield performance were identified from YN999. These results indicate that YN999 has enriched the superior alleles of yield per plant and 1000-grain weight, which might be the important genetic basis for the high and stable yield in YN999. This study provided theoretical reference in application of YN999 as key parent in molecular breeding programs, and identification and cloning of the genes with high yield performance.

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王矗,殷岩,王昊,等.小麦品种烟农999高产遗传基础解析[J].植物遗传资源学报,2023,24(3):732-743.

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  • 收稿日期:2022-12-13
  • 最后修改日期:2022-12-13
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  • 在线发布日期: 2023-04-27
  • 出版日期: 2023-04-27
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