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Nahyun Lee

Publications and source records attributed to Nahyun Lee.

3 recordsLinked to original sources

Membrane-associated compartmentalization of zearalenone biosynthetic enzymes and Syn2-associated zearalenone homeostasis in Fusarium graminearum.

Subcellular compartmentalization has attracted increasing attention in fungal secondary metabolism, particularly in the biosynthesis and trafficking of mycotoxins. However, the subcellular site of zearalenone (ZEA) biosynthesis and the mechanisms underlying its export in Fusarium graminearum remain poorly understood. ZEA is a polyketide mycotoxin that poses a serious threat to food safety through contamination of cereal grains and induces severe estrogenic effects in mammals. Its biosynthesis is governed by a dedicated biosynthetic gene cluster consisting of PKS4, PKS13, ZEB1, and ZEB2. In this study, we investigated the subcellular organization of the ZEA biosynthetic machinery and found that key biosynthetic enzymes accumulated in punctate structures that overlapped with small CMAC-positive vacuolar structures and were closely associated with FM4-64-labeled membranes. Furthermore, our results suggest that the syntaxin-like t-SNARE protein Syn2 contributes to extracellular ZEA accumulation and intracellular toxin homeostasis. Disruption of SYN2 abolished visible ZEA crystal formation on the hyphal surface and was associated with increased intracellular ZEA retention. This intracellular accumulation was accompanied by strong induction of the ZEA biosynthetic gene cluster and reduced cellular viability. Moreover, deletion of ZEB2 in the Δsyn2 background abolished ZEA production and restored cell viability, supporting an association between Zeb2-dependent ZEA biosynthesis and the cytotoxic phenotype of the Δsyn2 mutant. Together, our findings suggest a potential link between membrane-associated organization of ZEA biosynthetic enzymes, Syn2-associated ZEA distribution, intracellular toxin homeostasis, and fungal viability. Further studies will be required to define the precise mechanisms underlying ZEA transport and compartment function.

Fusarium graminearum

High-variance phenome database reveals important roles of WD40 proteins in the plant pathogenic fungus Fusarium graminearum.

WD40 is a highly conserved protein domain in eukaryotes that functions as a versatile platform for protein-protein interactions and participates in diverse biological processes. We performed a genome-wide functional analysis of WD40 domain-containing proteins in Fusarium graminearum, a phytopathogenic fungus that causes severe yield losses and mycotoxin contamination in major cereal crops. Comprehensive phenotypic profiling of 119 WD40 gene deletion mutants across 22 phenotypic traits established a systematic WD40 phenome dataset, revealing the broad functional involvement of WD40 proteins and a strong correlation between sexual reproduction and virulence. Protein interaction analyses of selected WD40 proteins revealed diverse WD40-mediated interaction patterns and provided further insights into WD40-mediated protein interactions and their roles in protein complex formation. This study provides a foundation for further characterization of WD40 proteins in filamentous fungi.

Fusarium graminearum

Integrative glycomic analysis reveals the crucial role of protein glycosylation in fungal pathogenesis.

Protein glycosylation, a co- and post-translational modification that enhances the functional diversity of the proteome, contributes to various molecular and cellular functions by transferring different polysaccharides onto proteins. During the last decade, the role of glycosylation in plant pathogenic fungi has received significant attention, and glycoproteins are expected to play essential roles in various biological processes including pathogenicity. However, the comprehensive functional genetic analyses for protein glycosylation pathways and glycan structures of phytopathogenic fungi are still largely unknown. Here, we investigated the role of protein glycosylation in Fusarium graminearum by identifying 65 putative genes involved in protein glycosylation and characterizing their functions. Through cell wall component profiling and HPLC analysis, we characterized the overall N- and O-glycan structures in F. graminearum and found that deletion of ALG3 and ALG12 led to truncated core N-glycan structures. Quantitative proteomics analysis revealed that the truncated core N-glycans, generated by the loss of two key enzymes in the initial core N-glycosylation pathway, Alg3 and Alg12, affected a wide range of glycoproteins-including transcription factors, phosphatases, kinases, peroxidases, and other proteins involved in various biological processes-ultimately impacting the virulence of F. graminearum. This study elucidates the complex roles of glycosylation, highlighting the connections among genes involved in the protein glycosylation pathway, glycans, and glycoproteins in regulating the general biology and pathogenicity of F. graminearum. It also would be the fungal glycobiology study initiative.

Glycosylation