Genotyping-by-sequencing-based high-resolution mapping reveals a single candidate gene for the grapevine veraison locus Ver1.

IF 6.5 1区 生物学 Q1 PLANT SCIENCES Plant Physiology Pub Date : 2024-09-02 DOI:10.1093/plphys/kiae272
Lena Frenzke, Franco Röckel, Torsten Wenke, Florian Schwander, Konrad Grützmann, Julia Naumann, Falk Zakrzewski, Tom Heinekamp, Maria Maglione, Anja Wenke, Anja Kögler, Eva Zyprian, Andreas Dahl, Franz Förster, Reinhard Töpfer, Stefan Wanke
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Abstract

Veraison marks the transition from berry growth to berry ripening and is a crucial phenological stage in grapevine (Vitis vinifera): the berries become soft and begin to accumulate sugars, aromatic substances, and, in red cultivars, anthocyanins for pigmentation, while the organic acid levels begin to decrease. These changes determine the potential quality of wine. However, rising global temperatures lead to earlier flowering and ripening, which strongly influence wine quality. Here, we combined genotyping-by-sequencing with a bioinformatics pipeline on ∼150 F1 genotypes derived from a cross between the early ripening variety "Calardis Musqué" and the late-ripening variety "Villard Blanc". Starting from 20,410 haplotype-based markers, we generated a high-density genetic map and performed a quantitative trait locus analysis based on phenotypic datasets evaluated over 20 yrs. Through locus-specific marker enrichment and recombinant screening of ∼1,000 additional genotypes, we refined the originally postulated 5-mb veraison locus, Ver1, on chromosome 16 to only 112 kb, allowing us to pinpoint the ethylene response factor VviERF027 (VCost.v3 gene ID: Vitvi16g00942, CRIBIv1 gene ID: VIT_16s0100g00400) as veraison candidate gene. Furthermore, the early veraison allele could be traced back to a clonal "Pinot" variant first mentioned in the seventeenth century. "Pinot Precoce Noir" passed this allele over "Madeleine Royale" to the maternal grandparent "Bacchus Weiss" and, ultimately, to the maternal parent "Calardis Musqué". Our findings are crucial for ripening time control, thereby improving wine quality, and for breeding grapevines adjusted to climate change scenarios that have a major impact on agro-ecosystems in altering crop plant phenology.

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基于基因分型测序的高分辨率图谱揭示了葡萄变色基因座 Ver1 的单个候选基因。
葡萄成熟期标志着浆果从生长到成熟的过渡,是葡萄(葡萄属)的一个重要物候阶段:浆果变得柔软,开始积累糖分和芳香物质,在红色葡萄品种中,花青素用于着色,同时有机酸含量开始下降。这些变化决定了葡萄酒的潜在品质。然而,全球气温升高导致花期和成熟期提前,这对葡萄酒的质量有很大影响。在这里,我们对早熟品种 "Calardis Musqué "和晚熟品种 "Villard Blanc "杂交产生的 150 个 F1 基因型进行了基因分型测序和生物信息学分析。从 20,410 个基于单倍型的标记开始,我们生成了一个高密度遗传图谱,并根据 20 多年来评估的表型数据集进行了定量性状位点分析。通过位点特异性标记富集和对 1000 个额外基因型的重组筛选,我们将最初推测的位于 16 号染色体上的 5 Mb veraison 位点 Ver1 细化到仅 112 kb,从而将乙烯反应因子(ERF)VviERF027(VCost.v3 基因 ID:Vitvi16g00942,CRIBIv1 基因 ID:VIT_16s0100g00400)确定为 veraison 候选基因。此外,早熟等位基因可追溯到 17 世纪首次提到的克隆 "黑皮诺 "变种。Pinot Precoce Noir "将这一等位基因通过 "Madeleine Royale "传给了外祖父 "Bacchus Weiss",并最终传给了母本 "Calardis Musqué"。我们的研究结果对于控制葡萄成熟时间,从而提高葡萄酒品质,以及培育适应气候变化的葡萄树都至关重要,因为气候变化对农业生态系统的影响很大,会改变作物的物候。
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来源期刊
Plant Physiology
Plant Physiology 生物-植物科学
CiteScore
12.20
自引率
5.40%
发文量
535
审稿时长
2.3 months
期刊介绍: Plant Physiology® is a distinguished and highly respected journal with a rich history dating back to its establishment in 1926. It stands as a leading international publication in the field of plant biology, covering a comprehensive range of topics from the molecular and structural aspects of plant life to systems biology and ecophysiology. Recognized as the most highly cited journal in plant sciences, Plant Physiology® is a testament to its commitment to excellence and the dissemination of groundbreaking research. As the official publication of the American Society of Plant Biologists, Plant Physiology® upholds rigorous peer-review standards, ensuring that the scientific community receives the highest quality research. The journal releases 12 issues annually, providing a steady stream of new findings and insights to its readership.
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