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Updated: Jun 9, 2025

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Published on: November 8, 2006
S-palmitoylation of MAP kinase is essential for fungal virulence
Yuhang Duan1, Pingping Li1, Deyao Zhang1
1State Key Laboratory of Agricultural Microbiology/Hubei Key Laboratory of Plant Pathology, Huazhong Agricultural University, Wuhan, China.
Abstract:
S-palmitoylation is an important reversible protein post-translational modification in organisms. However, its role in fungi is uncertain. Here, we found the treatment of the rice false fungus Ustilaginoidea virens with S-palmitoylation inhibitor 2 BP resulted in a significant decrease in fungal virulence. Comprehensive identification of S-palmitoylation sites and proteins in U. virens revealed a total of 4,089 S-palmitoylation sites identified among 2,192 proteins and that S-palmitoylated proteins were involved in diverse biological processes. Among the five palmitoyltransferases, UvPfa3 and UvPfa4 were found to regulate the pathogenicity of U. virens. We then performed quantitative proteomic analysis of ∆UvPfa3 and ∆UvPfa4 mutants. Interestingly, S-palmitoylated proteins were significantly enriched in the mitogen-activated protein kinase and autophagy pathways, and MAP kinase UvSlt2 was confirmed to be an S-palmitoylated protein which was palmitoylated by UvPfa4. Mutations of S-palmitoylation sites in UvSlt2 resulted in significantly reduced fungal virulence and decreased kinase enzymatic activity and phosphorylation levels. Simulations of molecular dynamics demonstrated mutation of S-palmitoylation sites in UvSlt2 causing decreased hydrophobic solvent-accessible surface area, thereby weakening the bonding force with its substrate UvRlm1. Taken together, S-palmitoylation promotes U. virens virulence through palmitoylation of MAP kinase UvSlt2 by palmitoyltransferase UvPfa4. This enhances the enzymatic phosphorylation activity of the kinase, thereby increasing hydrophobic solvent-accessible surface area and binding activity between the UvSlt2 enzyme and its substrate UvRlm1. Our studies provide a framework for dissecting the biological functions of S-palmitoylation and reveal an important role for S-palmitoylation in regulating the virulence of the pathogen.IMPORTANCES-palmitoylation is an important post-translational lipid modification of proteins. However, its role in fungi is uncertain. In this study, we found that S-palmitoylation promotes virulence of rice false smut fungus U. virens through palmitoylation of MAP kinase UvSlt2 by palmitoyltransferase UvPfa4. This enhances the enzymatic phosphorylation activity of the kinase, thereby increasing hydrophobic solvent-accessible surface area and binding activity between the UvSlt2 enzyme and its substrate UvRlm1. Our studies provide a framework for dissecting the biological functions of S-palmitoylation and reveal an important role for S-palmitoylation in regulating the virulence of the pathogen. This is the first functional study to reveal the role of S-palmitoylation in fungal virulence.
Insights
S-palmitoylation, a protein modification, is crucial for the virulence of the rice false smut fungus Ustilaginoidea virens. This study reveals how palmitoyltransferase UvPfa4 modifies MAP kinase UvSlt2, enhancing fungal pathogenicity.
Area of Science:
- Biochemistry
- Molecular Biology
- Mycology
Background:
- S-palmitoylation is a reversible protein post-translational modification.
- The role of S-palmitoylation in fungal pathogenicity remains largely uncharacterized.
- Ustilaginoidea virens causes rice false smut, impacting crop yield.
Purpose of the Study:
- To investigate the role of S-palmitoylation in Ustilaginoidea virens virulence.
- To identify S-palmitoylated proteins and their functions in U. virens.
- To elucidate the molecular mechanism by which S-palmitoylation affects fungal pathogenicity.
Main Methods:
- Treatment of U. virens with an S-palmitoylation inhibitor (2 BP).
- Comprehensive identification of S-palmitoylation sites and proteins using mass spectrometry.
- Quantitative proteomic analysis of palmitoyltransferase mutants (∆UvPfa3, ∆UvPfa4).
- Site-directed mutagenesis of S-palmitoylation sites in UvSlt2.
- Molecular dynamics simulations.
Main Results:
- Inhibition of S-palmitoylation significantly reduced U. virens virulence.
- Identified 4,089 S-palmitoylation sites on 2,192 proteins involved in diverse biological processes.
- UvPfa3 and UvPfa4 were identified as key palmitoyltransferases regulating pathogenicity.
- S-palmitoylated proteins were enriched in mitogen-activated protein kinase (MAPK) and autophagy pathways.
- MAPK UvSlt2 is S-palmitoylated by UvPfa4, and this modification is essential for its enzymatic activity and virulence.
- Mutations in UvSlt2 S-palmitoylation sites reduced kinase activity and substrate binding (UvRlm1).
Conclusions:
- S-palmitoylation promotes U. virens virulence by facilitating the palmitoylation of MAP kinase UvSlt2 by UvPfa4.
- This modification enhances UvSlt2 kinase activity and its interaction with substrate UvRlm1.
- The study provides a framework for understanding S-palmitoylation in fungi and its role in pathogen virulence.
- This is the first functional study demonstrating the role of S-palmitoylation in fungal virulence.
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