QTL mapping and whole-genome sequencing analysis for novel genetic resources associated with sucrose content in soybean [Glycine max (L.) Merr.].

IF 4.2 1区 农林科学 Q1 AGRONOMY Theoretical and Applied Genetics Pub Date : 2025-02-03 DOI:10.1007/s00122-024-04808-5
Dongho Lee, Tri D Vuong, James G Shannon, Qijian Song, Feng Lin, Henry T Nguyen
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Abstract

Key message: A major QTL for sucrose content was mapped on chromosome 8 in PI 506593. The novel genetic variants and candidate genes were further identified within the major QTL. Sucrose in soybean [Glycine max (L.) Merr.] contribute to animal feed efficiency and natural sweetness of soy products. Thus, identifying novel genetic resources, such as quantitative trait loci (QTL), associated with sucrose content in soybean is essential for enhancing seed values. In this study, two recombinant inbred line populations derived from the same high sucrose donor parent, PI 506593, were used to identify significant QTLs. A total of 11 sucrose-related regions on chromosomes (Chrs.) 4, 5, 6, 8, 10, and 13 were identified using QTL analysis. Among them, four QTLs (qSUC_08.1, qSUC_08.2, qSUC_08.3, and qSUC_08.4) were clustered in the interval of 40,597,410-42,861,364 bp on Chr. 8, which was considered major QTL region. A desirable marker at 41,834,095 bp was tested in two populations, showing that two phenotypically extreme groups were efficiently differentiated. We further identified 44 and 54 candidate genes with non-synonymous mutations in the major QTL region based on the annotations of Wm82.a2.v1 and Wm82.a5.v1 assemblies, respectively. Among 54 candidate genes from Wm82.a5.v1, Protein Variation Effect Analyzer (PROVEAN) revealed that 18 genes contained 34 variants that had deleterious impacts on biological functions. RNA-seq analysis highlighted five candidate genes that were highly expressed in pod and seed tissues during reproductive stages and other plant parts. A gene, Gm_Wm82_23219 (Glyma.08G293800, Wm82.a2.v1) encoding proline-rich protein 4-like, was highlighted in both PROVEAN and RNA-seq analyses. Novel findings in this study will be valuable genetic resources in soybean breeding programs that aim to improve efficiency in animal feed and human food.

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大豆蔗糖含量相关新遗传资源的QTL定位与全基因组测序分析[j]稳定)。
关键信息:在PI 506593的8号染色体上定位了一个主要的蔗糖含量QTL。在主QTL中进一步鉴定了新的遗传变异和候选基因。大豆中的蔗糖[甘氨酸max (L.)]稳定。]有助于提高动物饲料效率和豆制品的天然甜味。因此,寻找与大豆蔗糖含量相关的新型遗传资源,如数量性状位点(QTL),对提高大豆种子价值具有重要意义。本研究利用来自同一高糖供体亲本PI 506593的两个重组自交系群体,鉴定了显著的qtl。QTL分析共鉴定了11个蔗糖相关区域,分别位于第4、5、6、8、10和13号染色体上。其中,qSUC_08.1、qSUC_08.2、qSUC_08.3和qSUC_08.4 4个QTL在Chr 8上聚集在40,597,440 ~ 42,861,364 bp区间,被认为是主要QTL区域。在两个种群中检测了41,834,095 bp的理想标记,表明两个表型极端的群体有效分化。根据Wm82.a2的注释,我们进一步在主要QTL区域鉴定出44个和54个非同义突变的候选基因。v1和Wm82.a5。分别为V1组件。在Wm82.a5的54个候选基因中。v1,蛋白质变异效应分析仪(PROVEAN)显示,18个基因包含34个对生物功能有有害影响的变异。RNA-seq分析突出了5个候选基因,这些基因在生殖阶段和其他植物部位的荚果和种子组织中高度表达。基因Gm_Wm82_23219 (Glyma.08G293800, Wm82.a2.v1)编码富含脯氨酸的蛋白4-like,在provan和RNA-seq分析中均得到突出显示。本研究的新发现将为大豆育种计划提供宝贵的遗传资源,旨在提高动物饲料和人类食品的效率。
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来源期刊
CiteScore
9.60
自引率
7.40%
发文量
241
审稿时长
2.3 months
期刊介绍: Theoretical and Applied Genetics publishes original research and review articles in all key areas of modern plant genetics, plant genomics and plant biotechnology. All work needs to have a clear genetic component and significant impact on plant breeding. Theoretical considerations are only accepted in combination with new experimental data and/or if they indicate a relevant application in plant genetics or breeding. Emphasizing the practical, the journal focuses on research into leading crop plants and articles presenting innovative approaches.
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