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Jun Wang

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Open access Sep 2026

GWAS combined with TWAS reveals the QTLs and putative candidate genes associated with leaflet shape-associated traits in soybean (Glycine max (L.) Merr.)

Leaf shape critically determines soybean light interception and yield. Given the natural leaflet phenotypic variation across genetic backgrounds and environments, identifying leaflet position-dependent quantitative trait loci (QTLs) is essential for unraveling the genetic basis of leaf development and accelerating the breeding selection of soybean varieties with ideal plant architecture. In this study, multi-location association panels were constructed for GWAS and TWAS: 1062 (2019 Jingzhou) and 1161 (2020 Beijing) accessions for GWAS, while 285 (2019 Jingzhou) and 231 (2020 Beijing) accessions for TWAS. Six QTLs were detected: an independent, newly identified association signal on Chr3 (40534981–40825558) modulating lateral leaflet width (LW) and leaflet length-to-width ratio (LLWR) at the fourth upper node (4 S); a hotspot on Chr19 (44522754–45100493) modulating LW, LLWR and leaflet area (LA) of lateral leaflets at the fourth (4 S) and fifth (5 S) upper nodes; and an interval on Chr20 (35784232–36559289) containing the characterized gene Ln , which modulates LLWR across lateral leaflets (4 S, 5 S) and terminal leaflets at the fourth and fifth upper nodes (4 M, 5 M). Integrating gene expression profiling and haplotype analysis, four GWAS-derived genes ( Glyma.03G196600 , Glyma.03G196700 , Glyma.19G193700 and Glyma.19G194600 ) were predicted as putative candidate genes modulating leaflet shape. Two additional candidate genes ( Glyma.05G019900 and Glyma.20G119400 ) with suggestive associations to LLWR were further identified via TWAS, integrating transcriptome variation and haplotype analysis. This study advances our understanding of the genetic basis governing soybean leaflet shape and supplies valuable gene resources and theoretical insights for molecular breeding targeting ideal soybean plant architecture.

Zheng-Wei Zhang, Yi-Jie Chen, Xin Su et al. · 0 citations
Open access Aug 2026

Genome-Wide Association Identifies Candidate Genes for Salt Tolerance in Soybean at Emergence and Seedling Stages

Simple Summary Soil salinization is an expanding threat to soybean production worldwide. Resolving the genetic basis of salt tolerance at early growth stages supports the development of resilient cultivars. In this study, we evaluated 256 soybean accessions for salt tolerance at emergence and seedling stages and conducted genome-wide association analysis (GWAS) using a high-density single nucleotide polymorphism (SNP) array. We identified 19 genomic regions (quantitative trait loci, QTLs) associated with salt tolerance, including 16 at the emergence stage and 3 at the seedling stage, along with four putative candidate genes with predicted functions in stress responses. Salt tolerance at the two developmental stages was weakly correlated, indicating that tolerance is stage-specific and that at each stage requires separate selection. These findings provide genetic targets for breeding salt-tolerant soybean varieties.

Xiao Luo, Yue-Mei Ji, Jiangyuan Xu et al. · 0 citations
Aug 2026

The COBRA-Like9 from Glycine tabacina enhanced salt tolerance in cultivated soybean

This study systematically characterized the COBL gene family in the salt-resilient Glycine tabacina and identified a novel GtCOBL9 that may confers salt tolerance to cultivated soybean through cell wall modification, ionic and oxidative adjustments, however underlying molecular mechanisms require further investigations.

Sawaira Jadoon, Zheng-Wei Zhang, Menghui Tan et al. · 0 citations

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