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Zhong-Qiu Fu

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Open access Aug 2026

Genome-Wide Characterization of the Soybean GmCXE Gene Subfamily Reveals GmCXE54 as a Candidate Gene for Root Isoflavone Accumulation

Carboxylesterases (CXEs) participate in diverse plant metabolic processes, including isoflavone biosynthesis. However, the soybean GmCXE subfamily remains poorly characterized, especially in relation to root isoflavone accumulation and the response to Fusarium oxysporum. Here, fifty-six putative GmCXE genes were identified in the soybean genome and classified into three major phylogenetic clades. Analyses of gene structure, conserved motifs, protein domains, and promoter cis-elements revealed conserved features as well as potential functional divergence among subfamily members. Collinearity and duplication analyses indicated that segmental duplication was the main driver of GmCXE subfamily expansion. Tissue-specific expression profiling and RT-qPCR validation selected five root-expressed genes as candidates associated with isoflavone accumulation. SNP variation analysis and allelic group analysis of 209 soybean accessions further prioritized GmCXE54 as a candidate gene for root isoflavone accumulation. Allelic groups defined by a putative promoter SNP, Chr.20-rs39215413, showed significant differences in root daidzein and total isoflavone contents, with accessions carrying the C allele exhibiting higher levels of both traits than those carrying the T allele. Functional analysis in soybean hairy roots showed that GmCXE54 overexpression increased daidzein and total isoflavone accumulation. At 3 h after F. oxysporum inoculation, GmCXE2, GmCXE39, and GmCXE54 were induced, with GmCXE54 showing the strongest response in the resistant accession ZD27. These findings clarify GmCXE subfamily evolution and identify GmCXE54 as a candidate gene associated with root isoflavone accumulation and early F. oxysporum response, offering new perspectives for improving soybean isoflavone-related traits and investigating root response mechanisms.

Xu Wu, Zhong-Qiu Fu, Wan-Tong Zhao et al. · 0 citations
Open access Aug 2026

Association Mapping of Seedling Resistance to Fusarium graminearum Root Rot and Development of KASP Assays in Soybean

Soybean root rot caused by Fusarium graminearum is an important soil-borne disease. It hinders seedling establishment and ultimately reduces soybean yield. Resistant germplasm and reliable molecular markers are therefore needed for resistance breeding. In this study, 336 soybean accessions were evaluated for resistance to F. graminearum root rot using the disease severity index (DSI), which ranged from 5.71 to 100.00 across the association panel. Genome-wide association analysis was performed using resequencing-based single nucleotide polymorphism (SNP) data with mixed linear model (MLM) and Fixed and random model Circulating Probability Unification (FarmCPU) models, which detected 117 and 113 candidate resistance-associated SNPs, respectively. Among these, 105 shared SNPs were used to define candidate genomic intervals containing 247 annotated genes. Based on Gene Ontology (GO) and Kyoto Encyclopedia of Genes and Genomes (KEGG) enrichment, functional annotation, and allelic-effect analysis, six candidate genes and their associated exonic SNPs were prioritized. Quantitative reverse transcription polymerase chain reaction (qRT-PCR) analysis showed infection-responsive expression patterns for all six candidate genes, with Glyma.17g202500 and Glyma.18g266700 showing stronger induction in the resistant accession. Two SNPs in these genes were converted into Kompetitive allele-specific PCR (KASP) assays. KASP-S17_32244510 and KASP-S18_55105706 were successfully developed for genotype screening, with screening efficiencies of 73.08% and 74.29%, respectively. These findings identify useful genetic targets and molecular markers for improving soybean resistance to root rot caused by F. graminearum.

Xiangkun Meng, Zhong-Qiu Fu, Wan-Tong Zhao et al. · 0 citations