Genome-wide association mapping for pre-harvest sprouting in European winter wheat detects novel resistance QTL, pleiotropic effects, and structural variation in multiple genomes.

IF 3.9 2区 生物学 Q1 GENETICS & HEREDITY Plant Genome Pub Date : 2024-03-01 Epub Date: 2023-02-27 DOI:10.1002/tpg2.20301
Hermann G Dallinger, Franziska Löschenberger, Naim Azrak, Christian Ametz, Sebastian Michel, Hermann Bürstmayr
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引用次数: 0

Abstract

Pre-harvest sprouting (PHS), germination of seeds before harvest, is a major problem in global wheat (Triticum aestivum L.) production, and leads to reduced bread-making quality in affected grain. Breeding for PHS resistance can prevent losses under adverse conditions. Selecting resistant lines in years lacking pre-harvest rain, requires challenging of plants in the field or in the laboratory or using genetic markers. Despite the availability of a wheat reference and pan-genome, linking markers, genes, allelic, and structural variation, a complete understanding of the mechanisms underlying various sources of PHS resistance is still lacking. Therefore, we challenged a population of European wheat varieties and breeding lines with PHS conditions and phenotyped them for PHS traits, grain quality, phenological and agronomic traits to conduct genome-wide association mapping. Furthermore, we compared these marker-trait associations to previously reported PHS loci and evaluated their usefulness for breeding. We found markers associated with PHS on all chromosomes, with strong evidence for novel quantitative trait locus/loci (QTL) on chromosome 1A and 5B. The QTL on chromosome 1A lacks pleiotropic effect, for the QTL on 5B we detected pleiotropic effects on phenology and grain quality. Multiple peaks on chromosome 4A co-located with the major resistance locus Phs-A1, for which two causal genes, TaPM19 and TaMKK3, have been proposed. Mapping markers and genes to the pan-genome and chromosomal alignments provide evidence for structural variation around this major PHS-resistance locus. Although PHS is controlled by many loci distributed across the wheat genome, Phs-A1 on chromosome 4A seems to be the most effective and widely deployed source of resistance, in European wheat varieties.

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欧洲冬小麦收获前萌芽的全基因组关联图谱在多个基因组中检测到新的抗性 QTL、多效应和结构变异。
收获前发芽(PHS)是指种子在收获前萌发,是全球小麦(Triticum aestivum L.)生产中的一个主要问题,会导致受影响谷物的面包品质下降。培育抗 PHS 的品种可以防止在不利条件下的损失。在缺乏收获前降雨的年份选择抗性品系,需要在田间、实验室或使用遗传标记对植株进行挑战。尽管已经有了小麦参考基因组和泛基因组,将标记、基因、等位基因和结构变异联系在一起,但我们仍然缺乏对 PHS 抗性各种来源机制的全面了解。因此,我们对欧洲小麦品种和育种品系群体进行了PHS条件挑战,并对它们的PHS性状、谷物品质、表观和农艺性状进行了表型分析,以进行全基因组关联图谱绘制。此外,我们还将这些标记-性状关联与之前报道的 PHS 位点进行了比较,并评估了它们在育种中的作用。我们在所有染色体上都发现了与 PHS 相关的标记,并在 1A 和 5B 染色体上发现了新的数量性状基因座/位点(QTL)的有力证据。染色体 1A 上的 QTL 缺乏多向效应,而对于染色体 5B 上的 QTL,我们检测到了对物候和谷物品质的多向效应。染色体 4A 上的多个峰与主要抗性基因座 Phs-A1 位于同一位置,并提出了两个致病基因 TaPM19 和 TaMKK3。将标记和基因映射到泛基因组和染色体比对中,为这一主要 PHS 抗性基因座周围的结构变异提供了证据。虽然 PHS 由分布在小麦基因组中的许多基因座控制,但在欧洲小麦品种中,位于 4A 染色体上的 Phs-A1 似乎是最有效、应用最广泛的抗性来源。
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来源期刊
Plant Genome
Plant Genome PLANT SCIENCES-GENETICS & HEREDITY
CiteScore
6.00
自引率
4.80%
发文量
93
审稿时长
>12 weeks
期刊介绍: The Plant Genome publishes original research investigating all aspects of plant genomics. Technical breakthroughs reporting improvements in the efficiency and speed of acquiring and interpreting plant genomics data are welcome. The editorial board gives preference to novel reports that use innovative genomic applications that advance our understanding of plant biology that may have applications to crop improvement. The journal also publishes invited review articles and perspectives that offer insight and commentary on recent advances in genomics and their potential for agronomic improvement.
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