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Reverse Genetic Analyses of Hydrophobins in Sclerotinia sclerotiorum Revealed Their Diverse Roles in Development,
Jinyi Tan1,2, Zhengxi Gong1,2, Xinyi Huang2
1Michael Smith Laboratories, University of British Columbia, Vancouver, BC V6T 1Z4, Canada.
Abstract:
Sclerotinia sclerotiorum is a notorious soilborne fungal pathogen that causes white mold in a wide range of host plants, leading to globally significant yield loss in many crops. Hydrophobins (HPs) are small, secreted proteins unique to filamentous fungi, with diverse roles in fungal biology. However, their functions in S. sclerotiorum remain poorly understood. Here, we systematically investigated the roles of three HP genes, SsHP1, SsHP2, and SsHP3, through reverse genetic analyses. By analyzing their deletion mutant phenotypes, we demonstrate that class I HP (SsHP1) is specifically required for proper sclerotia development, whereas class II HPs (SsHP2 and SsHP3) are essential for compound appressoria functionality. All three HPs contribute to fungal surface hydrophobicity, cell wall integrity, and stress tolerance. Using mycelial fusion, we generated double mutants lacking both class II HPs, which exhibited more severe defects in appressoria development, virulence, cell wall integrity, and stress adaptation, indicating their partially redundant roles. SsHP2 is required for both host penetration and post-penetration virulence, whereas SsHP3 mainly affects host penetration, revealing their overlapping yet distinct contributions to pathogenic development. Although all HP mutants formed normal apothecia and asci, they released significantly fewer ascospores, suggesting that HPs are dispensable for sexual morphogenesis but crucial for the biophysical process of ascospore dispersal. Furthermore, carbohydrate analyses uncovered that these HPs affect cell wall composition, more broadly influencing stress adaptation and virulence. Taken together, our study reveals both conserved and divergent roles of HPs across fungi and highlight their multifaceted contributions to S. sclerotiorum biology, offering new perspectives for disease management.
Insights
Hydrophobins (HPs) in Sclerotinia sclerotiorum are crucial for fungal development and virulence. This study reveals their roles in sclerotia formation, appressoria function, and stress adaptation, offering insights for disease management.
Area of Science:
- Plant Pathology
- Mycology
- Molecular Biology
Background:
- *Sclerotinia sclerotiorum* causes significant crop yield losses globally.
- Hydrophobins (HPs) are fungal proteins with diverse but poorly understood functions in *S. sclerotiorum*.
Purpose of the Study:
- To investigate the roles of three hydrophobin genes (*SsHP1*, *SsHP2*, *SsHP3*) in *S. sclerotiorum* development and pathogenicity.
- To elucidate the specific functions of class I and class II hydrophobins.
Main Methods:
- Reverse genetic analyses using deletion mutants.
- Phenotypic characterization of single and double mutants.
- Mycelial fusion for generating double mutants.
- Carbohydrate analysis of cell walls.
Main Results:
- Class I HP (*SsHP1*) is essential for sclerotia development.
- Class II HPs (*SsHP2*, *SsHP3*) are critical for appressoria function.
- All HPs contribute to hydrophobicity, cell wall integrity, and stress tolerance.
- Double mutants showed enhanced defects, indicating redundant roles for class II HPs.
- HPs influence virulence, host penetration, and ascospore dispersal.
- HPs impact cell wall composition, affecting stress adaptation and virulence.
Conclusions:
- Hydrophobins play multifaceted roles in *S. sclerotiorum* biology, impacting development, pathogenicity, and stress adaptation.
- Distinct and overlapping functions of class I and class II hydrophobins were identified.
- Findings offer new perspectives for managing white mold disease.
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