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The FgVps39-FgVam7-FgSso1 Complex Mediates Vesicle Trafficking and Is Important for the Development and Virulence of Fusarium graminearum.
- Source :
-
Molecular plant-microbe interactions : MPMI [Mol Plant Microbe Interact] 2017 May; Vol. 30 (5), pp. 410-422. Date of Electronic Publication: 2017 Apr 24. - Publication Year :
- 2017
-
Abstract
- Vesicle trafficking is an important event in eukaryotic organisms. Many proteins and lipids transported between different organelles or compartments are essential for survival. These processes are mediated by soluble N-ethylmaleimide-sensitive factor attachment protein receptor (SNARE) proteins, Rab-GTPases, and multisubunit tethering complexes such as class C core vacuole or endosome tethering and homotypic fusion or vacuole protein sorting (HOPS). Our previous study has demonstrated that FgVam7, which encodes a SNARE protein involving in vesicle trafficking, plays crucial roles in growth, asexual or sexual development, deoxynivalenol production, and pathogenicity in Fusarium graminearum. Here, the affinity purification approach was used to identify FgVam7-interacting proteins to explore its regulatory mechanisms during vesicle trafficking. The orthologs of yeast Vps39, a HOPS tethering complex subunit, and Sso1, a SNARE protein localized to the vacuole or endosome, were identified and selected for further characterization. In yeast two-hybrid and glutathione-S-transferase pull-down assays, FgVam7, FgVps39, and FgSso1 interacted with each other as a complex. The ∆Fgvps39 mutant generated by targeted deletion was significantly reduced in vegetative growth and asexual development. It failed to produce sexual spores and was defective in plant infection and deoxynivalenol production. Further cellular localization and cytological examinations suggested that FgVps39 is involved in vesicle trafficking from early or late endosomes to vacuoles in F. graminearum. Additionally, the ∆Fgvps39 mutant was defective in vacuole morphology and autophagy, and it was delayed in endocytosis. Our results demonstrate that FgVam7 interacts with FgVps39 and FgSso1 to form a unique complex, which is involved in vesicle trafficking and modulating the proper development of infection-related morphogenesis in F. graminearum.
- Subjects :
- Autophagy drug effects
Autophagy genetics
Endocytosis drug effects
Endosomes drug effects
Endosomes metabolism
Fungal Proteins metabolism
Fungicides, Industrial pharmacology
Fusarium drug effects
Fusarium genetics
Gene Deletion
Gene Expression Regulation, Fungal drug effects
Genes, Fungal
Green Fluorescent Proteins metabolism
Guanosine Diphosphate metabolism
Guanosine Triphosphate metabolism
Hyphae drug effects
Hyphae growth & development
Hyphae metabolism
Microtubules drug effects
Microtubules metabolism
Models, Biological
Phenotype
Pigmentation drug effects
Protein Binding drug effects
Protein Transport drug effects
Spores, Fungal drug effects
Spores, Fungal metabolism
Stress, Physiological drug effects
Stress, Physiological genetics
Subcellular Fractions metabolism
Transport Vesicles drug effects
Trichothecenes metabolism
Two-Hybrid System Techniques
Virulence drug effects
Virulence genetics
Fusarium metabolism
Fusarium pathogenicity
Transport Vesicles metabolism
Subjects
Details
- Language :
- English
- ISSN :
- 0894-0282
- Volume :
- 30
- Issue :
- 5
- Database :
- MEDLINE
- Journal :
- Molecular plant-microbe interactions : MPMI
- Publication Type :
- Academic Journal
- Accession number :
- 28437167
- Full Text :
- https://doi.org/10.1094/MPMI-11-16-0242-R