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小麦籽粒大小和品质的 QTL 检测及其对低氮胁迫的响应。

QTL detection for wheat kernel size and quality and the responses of these traits to low nitrogen stress.

机构信息

Center for Agricultural Resources Research, Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, Shijiazhuang, 050021, China.

State Key Laboratory of Plant Cell and Chromosome Engineering, Chinese Academy of Sciences, Beijing, 100101, China.

出版信息

Theor Appl Genet. 2016 Mar;129(3):469-84. doi: 10.1007/s00122-015-2641-7. Epub 2015 Dec 10.

Abstract

QTLs for kernel characteristics and tolerance to N stress were identified, and the functions of ten known genes with regard to these traits were specified. Kernel size and quality characteristics in wheat (Triticum aestivum L.) ultimately determine the end use of the grain and affect its commodity price, both of which are influenced by the application of nitrogen (N) fertilizer. This study characterized quantitative trait loci (QTLs) for kernel size and quality and examined the responses of these traits to low-N stress using a recombinant inbred line population derived from Kenong 9204 × Jing 411. Phenotypic analyses were conducted in five trials that each included low- and high-N treatments. We identified 109 putative additive QTLs for 11 kernel size and quality characteristics and 49 QTLs for tolerance to N stress, 27 and 14 of which were stable across the tested environments, respectively. These QTLs were distributed across all wheat chromosomes except for chromosomes 3A, 4D, 6D, and 7B. Eleven QTL clusters that simultaneously affected kernel size- and quality-related traits were identified. At nine locations, 25 of the 49 QTLs for N deficiency tolerance coincided with the QTLs for kernel characteristics, indicating their genetic independence. The feasibility of indirect selection of a superior genotype for kernel size and quality under high-N conditions in breeding programs designed for a lower input management system are discussed. In addition, we specified the functions of Glu-A1, Glu-B1, Glu-A3, Glu-B3, TaCwi-A1, TaSus2, TaGS2-D1, PPO-D1, Rht-B1, and Ha with regard to kernel characteristics and the sensitivities of these characteristics to N stress. This study provides useful information for the genetic improvement of wheat kernel size, quality, and resistance to N stress.

摘要

鉴定了与粒性状和耐低氮胁迫相关的 QTL,并明确了十个与这些性状相关的已知基因的功能。小麦(Triticum aestivum L.)的粒大小和品质特性最终决定了谷物的用途,并影响其商品价格,而这两者均受氮(N)肥的施用影响。本研究利用源于 Kenong 9204×Jing 411 的重组自交系群体,对粒大小和品质的数量性状位点(QTL)进行了特征描述,并考察了这些性状对低氮胁迫的响应。在包括低氮和高氮处理的 5 个试验中进行了表型分析。共鉴定到 11 个粒大小和品质特性的 109 个加性 QTL 和 49 个耐低氮胁迫的 QTL,其中 27 和 14 个 QTL 分别在测试的环境中稳定存在。这些 QTL 分布在除了 3A、4D、6D 和 7B 以外的所有小麦染色体上。鉴定到 11 个同时影响粒大小和品质相关性状的 QTL 簇。在 25 个 49 个耐低氮胁迫的 QTL 中,有 9 个位于 25 个 QTL 与粒特性的 QTL 重合,表明它们具有遗传独立性。在设计低投入管理体系的育种计划中,讨论了在高氮条件下间接选择粒大小和品质优良基因型的可行性。此外,还明确了 Glu-A1、Glu-B1、Glu-A3、Glu-B3、TaCwi-A1、TaSus2、TaGS2-D1、PPO-D1、Rht-B1 和 Ha 与粒特性以及这些特性对氮胁迫的敏感性的功能。本研究为小麦粒大小、品质和耐氮胁迫的遗传改良提供了有用的信息。

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