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Trypsin-like proteins of the fungi as possible markers of pathogenicity
Aleksej G Dubovenko1, Yakov E Dunaevsky, Mikhail A Belozersky
1Faculty of Bioengineering and Bioinformatics, Moscow State University, Moscow 119991, Russia.
Abstract:
Sequences of peptidases with conserved motifs around the active site residues that are characteristic of trypsins (similar to trypsin peptidases, STP) were obtained from publicly-available fungal genomes and related databases. Among the 75 fungal genomes, 29 species of parasitic Ascomycota contained genes encoding STP and their homologs. Searches of non-redundant protein sequences, patented protein sequences, and expressed sequence tags resulted in another 18 STP sequences in 10 fungal species from Ascomycota, Basidiomycota, and Zygomycota. A comparison of fungi species containing STP sequences revealed that almost all are pathogens of plants, animals or fungi. A comparison of the primary structure of homologous proteins, including the residues responsible for substrate binding and specificity of the enzyme, revealed three groups of homologous sequences, all presumably from S1 family: trypsin-like peptidases, chymotrypsin-like peptidases and serine peptidases with unknown substrate specificity. Homologs that are presumably functionally inactive were predicted in all groups. The results in general support the hypothesis that the expression of trypsin-like peptidases in fungi represents a marker of fungal phytopathogenicity. A phylogenetic tree was constructed using peptidase and homolog amino acid sequences, demonstrating that all have noticeable differences and almost immediately deviate from the common root. Therefore, we conclude that the changes that occurred in STP of pathogenic fungi in the course of evolution represent specific adaptations to proteins of their respective hosts, and mutations in peptidase genes are important components of life-style changes and taxonomic divergence.
Insights
Fungal pathogens often possess trypsin-like peptidases (STP), suggesting these enzymes are key adaptations for host interaction and evolution. Their presence may indicate fungal phytopathogenicity.
Area of Science:
- Biochemistry
- Mycology
- Evolutionary Biology
Background:
- Fungal genomes contain genes for peptidases, enzymes crucial for protein breakdown.
- Trypsin-like peptidases (STP) are a class of serine peptidases with conserved active site motifs.
- The role of STP in fungal pathogenicity and evolution is not fully understood.
Purpose of the Study:
- To identify and characterize fungal trypsin-like peptidases (STP) and their homologs.
- To investigate the evolutionary relationships and potential functions of fungal STP.
- To assess the correlation between STP presence and fungal pathogenicity, particularly phytopathogenicity.
Main Methods:
- Bioinformatic searches of fungal genomes and protein databases for STP sequences.
- Comparative analysis of primary structures, including substrate-binding residues.
- Phylogenetic analysis of identified peptidase and homolog amino acid sequences.
Main Results:
- STP genes were identified in 29 Ascomycota species and homologs in additional species across Ascomycota, Basidiomycota, and Zygomycota.
- Most fungi harboring STP are pathogens of plants, animals, or other fungi.
- Analysis revealed three groups of homologous sequences: trypsin-like, chymotrypsin-like, and serine peptidases of unknown specificity, with predicted inactive homologs.
- Phylogenetic analysis showed significant divergence, suggesting adaptation to host proteins.
Conclusions:
- The presence of trypsin-like peptidases (STP) in fungi supports their role as a marker for fungal phytopathogenicity.
- Evolutionary changes in fungal STP reflect specific adaptations to host proteins.
- Mutations in peptidase genes are significant drivers of fungal lifestyle changes and taxonomic divergence.
Related Concept Videos
Fungal Group Zygomycota
Rapid Identification of Pathogens
Fungal Phylum Microsporidia
Fungal Phylum Ascomycota
Fungal Phylum Basidiomycota
Overview of Fungi
