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.

Fungal Biology
|October 22, 2010
PubMed

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.

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