@article{YUAN2026, 
author = {Wei YUAN and Tu ZHANG and GuangEn DONG and JinZhuo SHI and HaiXiao LI and ZhiYan CAO and Ning LIU and JinGao DONG},
title = {Palmitoyl Transferase StPFA5 Regulates the Growth, Development and Pathogenicity of Setosphaeria turcica},
year = {2026},
journal = {Scientia Agricultura Sinica},
volume = {59},
number = {16},
pages = {3577-3590},
keywords = {Setosphaeria turcica, S-palmitoylation, palmitoyl transferase, StPFA5, melanin, pathogenicity},
url = {https://www.sciopen.com/article/10.3864/j.issn.0578-1752.2026.16.008},
doi = {10.3864/j.issn.0578-1752.2026.16.008},
abstract = {ObjectiveS-palmitoylation is a dynamically reversible post-translational protein modification that exerts a key regulatory role in biological processes such as signal transduction, metabolic homeostasis, and protein localization and transport in organisms. However, its function in Setosphaeria turcica and its impact on the pathogenicity of this fungus remain unclear. This study aimed to investigate the role of the palmitoyl transferase StPFA5 in regulating the growth, development and pathogenicity of S. turcica, and to lay a foundation for elucidating the molecular mechanisms underlying S. turcica growth and pathogenic processes mediated by S-palmitoylationMethodStPFA5 was identified via homologous alignment and a phylogenetic tree was constructed. RT-qPCR was performed to determine the expression level of StPFA5 during the fungal infection process. The knockout mutant and complementation strain of StPFA5 were generated using homologous recombination technology. For the WT, ∆StPFA5 and C.∆StPFA5 strains, the growth rate and pathogenicity were determined, and hyphal morphology and hyphal germination were observed. Mycelial melanin was extracted by acid precipitation and alkaline dissolution, and the expression levels of melanin synthesis-related genes were detected by RT-qPCR. In addition, all strains were inoculated on PDA plates containing Congo red and CFW to assess the effect of StPFA5 on the cell wall integrity of S. turcica. Furthermore, proteomic and S-palmitoylomic analyses combined with database retrieval were conducted to identify differentially modified S-palmitoylation sites and their corresponding proteins in the WT and ∆StPFA5 strains, followed by functional annotation of these proteins.ResultStPFA5 shared the highest homology (80.35%) with PFA5 from Cochliobolus heterostrophus. Compared with the WT strain, ∆StPFA5 exhibited reduced colony growth rate, abnormal hyphal morphology and significantly decreased pathogenicity, and these phenotypic defects were restored to the WT level in the C.∆StPFA5 strain. Meanwhile, the melanin content in the mycelia of ∆StPFA5 was decreased, the expression of melanin synthesis-related genes was significantly down-regulated, and the sensitivity of ∆StPFA5 to cell wall stress was reduced. S-palmitoylomic analysis revealed that knockout of StPFA5 led to the downregulation of modification levels at 448 S-palmitoylation sites, and the proteins containing these downregulated sites were significantly enriched in biological pathways including amino acid anabolism, carbon metabolism, glycolysis, cell cycle and chromosome condensation. Combined with the phenotypic characteristics of ∆StPFA5, StPFA5 may affect the growth, development and pathogenicity of S. turcica by regulating the S-palmitoylation levels of proteins associated with these pathways.ConclusionThe palmitoyl transferase StPFA5 promotes the growth, development and melanin synthesis of S. turcica by regulating the S-palmitoylation modification levels of target proteins, and exerts a positive regulatory effect on the pathogenicity of this fungus.}
}