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Biomedical subjects

Yongguang Li

Publications and source records attributed to Yongguang Li.

2 recordsLinked to original sources

GmMYB29 activates Gm4CL3 to enhance soybean resistance to Heterodera glycines.

Soybean cyst nematode is a devastating soil-borne pathogen that severely limits soybean yield worldwide. To uncover downstream target genes of the resistance-associated transcription factor GmMYB29, we combined ChIP-seq and RNA-seq data from T3-generation GmMYB29-overexpressing soybean plants, alongside Gene Ontology (GO) and Kyoto Encyclopedia of Genes and Genomes (KEGG) enrichment analyses, to screen candidate genes carrying transcription factor binding peaks within the 2000 bp region upstream of transcription start sites (TSS). Four orthogonal molecular assays-yeast one-hybrid (Y1H), electrophoretic mobility shift assay (EMSA), dual-luciferase reporter (LUC) system, and GUS histochemical staining-collectively confirmed the specific physical interaction between GmMYB29 and the promoter of Gm4CL3. We generated transgenic soybean hairy roots overexpressing Gm4CL3 (OX-Gm4CL3) and CRISPR-Cas9-mediated Gm4CL3 knockout lines (KO-Gm4CL3), with wild-type (WT) plants serving as controls. Inoculation assays using SCN 3 demonstrated that OX-Gm4CL3 roots displayed substantially improved SCN resistance, while KO-Gm4CL3 roots were hypersusceptible to nematode infection. Mechanistic investigations revealed that Gm4CL3 promotes lignin deposition in root tissues to block SCN penetration. Furthermore, GmMYB29 and Gm4CL3 act synergistically to activate lignin biosynthetic pathways and strengthen soybean resistance against SCN 3 (SCN Race 3, the dominant physiological race in Northeast China). In summary, this study functionally characterizes Gm4CL3 and defines a previously unreported GmMYB29-Gm4CL3 regulatory cascade that mediates plant defense against SCN. This module functions independent of classic SCN resistance loci rhg1/Rhg4, providing new genetic resources for SCN-resistant soybean molecular breeding.

Glycine max

Genome-wide identification and expression profiling of the MADS-box gene family in Lavandula angustifolia.

BACKGROUND: MADS-box genes encode transcription factors critical for plant development, particularly floral organogenesis, flowering time regulation, and adaptation to environmental stresses. Among these, the MIKCC-type genes are pivotal regulators in floral developmental processes. Although the evolutionary diversification and functional dynamics of MADS-box genes have been extensively characterized in model plants such as Arabidopsis thaliana and Oryza sativa, their evolutionary relationships and functional profiles in Lavandula angustifolia, an economically significant aromatic plant, remain poorly understood. RESULTS: Genome-wide analysis identified 173 MADS-box genes in L. angustifolia, categorized into type I (Mα: 26; Mβ: 0; Mγ: 10) and type II (MIKCC: 125; MIKC*: 12) based on phylogenetic comparisons with A. thaliana. The MIKCC subgroup was further subdivided into 12 subclasses, including genes central to the ABCDE model of floral organ specification. Structural analyses revealed distinct conserved motifs and exon-intron configurations specific to each subgroup, indicative of functional divergence. Synteny analysis demonstrated Whole Genome Duplication (WGD) and segmental duplications as major contributors to MIKCC gene family expansion, notably among genes linked to floral organ development. Expression profiling via RNA-seq and quantitative real-time PCR (qPCR) showed type II MADS-box genes exhibited higher expression levels with pronounced tissue-specific and developmental stage-specific expression patterns compared to type I genes. Many type II genes displayed significant associations with floral organogenesis, floral transition, and abiotic stress responses, underscoring their essential roles in reproductive development and environmental adaptability in L. angustifolia. CONCLUSIONS: The identification and comprehensive characterization of 173 MADS-box genes in L. angustifolia highlight the significant expansion of the MIKCC subgroup driven primarily by WGD and segmental duplications. The distinct structural features and specific expression patterns observed provide insights into the functional divergence and complexity of these genes, particularly regarding floral organogenesis and adaptation to environmental stress. This study establishes a robust molecular basis for further functional analysis and genetic improvement of aromatic plants.

MADS Domain Proteins