首页> 外文期刊>Theoretical and Applied Genetics: International Journal of Breeding Research and Cell Genetics >Genome-wide association analysis of stem water-soluble carbohydrate content in bread wheat
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Genome-wide association analysis of stem water-soluble carbohydrate content in bread wheat

机译:面包小麦茎水溶性碳水化合物含量的基因组关联分析

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Key message GWAS identified 36 potentially new loci for wheat stem water-soluble carbohydrate (WSC) contents and 13 pleiotropic loci affecting WSC and thousand-kernel weight. Five KASP markers were developed and validated. Water-soluble carbohydrates (WSC) reserved in stems contribute significantly to grain yield (GY) in wheat. However, knowledge of the genetic architecture underlying stem WSC content (SWSCC) is limited. In the present study, 166 diverse wheat accessions from the Yellow and Huai Valleys Winter Wheat Zone of China and five other countries were grown in four well-watered environments. SWSCC at 10 days post-anthesis (10DPA), 20DPA and 30DPA, referred as WSC10, WSC20 and WSC30, respectively, and thousand-kernel weight (TKW) were assessed. Correlation analysis showed that TKW was significantly and positively correlated with WSC10 and WSC20. Genome-wide association study was performed on SWSCC and TKW with 373,106 markers from the wheat 660 K and 90 K SNP arrays. Totally, 62 stable loci were detected for SWSCC, with 36, 24 and 19 loci for WSC10, WSC20 and WSC30, respectively; among these, 36 are potentially new, 16 affected SWSCC at two or three time-points, and 13 showed pleiotropic effects on both SWSCC and TKW. Linear regression showed clear cumulative effects of favorable alleles for increasing SWSCC and TKW. Genetic gain analyses indicated that pyramiding favorable alleles of SWSCC had simultaneously improved TKW. Kompetitive allele-specific PCR markers for five pleiotropic loci associated with both SWSCC and TKW were developed and validated. This study provided a genome-wide landscape of the genetic architecture of SWSCC, gave a perspective for understanding the relationship between WSC and GY and explored the theoretical basis for co-improvement of WSC and GY. It also provided valuable loci and markers for future breeding.
机译:关键消息GWAS确定了36个潜在的小麦茎水溶性碳水化合物(WSC)内容物和13个影响WSC和千核重量的13个Pleiotropic基因座。开发并验证了五个Kasp标记。茎中保留的水溶性碳水化合物(WSC)显着促进小麦的籽粒产量(GY)。然而,有限的茎WSC含量(SWSCC)的遗传建筑学知识有限。在本研究中,来自黄色和淮谷的126种不同的小麦加入,中国和五个其他国家的冬小麦地区种植了四个充满浇水的环境。 SWSCC在发生后10天后(10dPa),20dPa和30dPa,分别称为WSC10,WSC20和WSC30,并评估千核重量(TKW)。相关分析表明,TKW与WSC10和WSC20显着呈正相关。在SWSCC和TKW上进行基因组 - 宽协会研究,其中373,106个来自小麦660k和90k SNP阵列的标记。完全,为SWSCC检测62个稳定基因座,分别为WSC10,WSC20和WSC30的36,24和19个基因座;其中,36个可能是新的,16个受影响的SWSCC,在两次或三个时间点,13个对SWSCC和TKW显示出抗性效应。线性回归显示出有利等位基因增加了SWSCC和TKW的清晰累积效应。遗传增益分析表明,SWSCC的功率良好等位基因同时改善了TKW。开发并验证了与SWSCC和TKW相关的五种抗血液靶标的Kombetitive等位基因特异性PCR标记。本研究提供了SWSCC遗传建筑的基因组景观,了解WSC和GY之间的关系,并探索了WSC和GY共同改进的理论依据。它还为未来的繁殖提供了有价值的基因座和标记。

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    Chinese Acad Agr Sci CAAS Natl Wheat Improvement Ctr Inst Crop Sci Beijing 100081 Peoples R China;

    Chinese Acad Agr Sci CAAS Natl Wheat Improvement Ctr Inst Crop Sci Beijing 100081 Peoples R China;

    Gansu Agr Univ Coll Agron Lanzhou 730000 Gansu Peoples R China;

    Dezhou Inst Agr Sci Dezhou 253000 Shandong Peoples R China;

    Chinese Acad Agr Sci CAAS Agr Genom Inst Shenzhen Shenzhen 518000 Peoples R China;

    Chinese Acad Agr Sci CAAS Natl Wheat Improvement Ctr Inst Crop Sci Beijing 100081 Peoples R China;

    Chinese Acad Agr Sci CAAS Natl Wheat Improvement Ctr Inst Crop Sci Beijing 100081 Peoples R China;

    Chinese Acad Agr Sci CAAS Natl Wheat Improvement Ctr Inst Crop Sci Beijing 100081 Peoples R China;

    Chinese Acad Agr Sci CAAS Natl Wheat Improvement Ctr Inst Crop Sci Beijing 100081 Peoples R China;

    Chinese Acad Agr Sci CAAS Natl Wheat Improvement Ctr Inst Crop Sci Beijing 100081 Peoples R China;

    Chinese Acad Agr Sci CAAS Natl Wheat Improvement Ctr Inst Crop Sci Beijing 100081 Peoples R China;

    Chinese Acad Agr Sci CAAS Natl Wheat Improvement Ctr Inst Crop Sci Beijing 100081 Peoples R China;

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  • 正文语种 eng
  • 中图分类 医学遗传学;
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