Molecular evolution of Pr1 proteases depicts ongoing diversification in Metarhizium spp

Fabio Carrer Andreis1,2, Augusto Schrank1,2, Claudia Elizabeth Thompson3,4,5,6

  • 1Rede Avançada em Biologia Computacional (RABICÓ), Petrópolis, RJ, Brazil.

Insights

Investigating Metarhizium anisopliae

Area of Science:

  • Mycology
  • Molecular Evolution
  • Biochemistry

Background:

  • The Pr1 family of serine endopeptidases are key virulence factors in entomopathogenic fungi.
  • Metarhizium anisopliae possesses 11 Pr1 isoforms, crucial for host cuticle penetration.
  • Virulence factors evolve under host-pathogen reciprocal selection.

Purpose of the Study:

  • To test the hypothesis that positive selection drives the evolution of Class II Pr1 proteins in M. anisopliae.
  • To identify positively selected sites and evidence of functional divergence in Pr1 isoforms.
  • To understand the evolutionary pressures shaping fungal virulence factors.

Main Methods:

  • Phylogenetic inference using amino acid and nucleotide datasets for Metarhizium spp. and related species.
  • Analysis of Class II Pr1 proteins, including proteinase K-like isoforms.
  • Identification of positively selected sites and functional divergence through comparative analysis.

Main Results:

  • Phylogenetic analyses largely supported species taxonomy with high statistical support.
  • Positively selected sites were identified in six of ten Class II Pr1 isoforms.
  • Evidence of functional divergence was found in most pairwise comparisons of Pr1 isoforms.

Conclusions:

  • Differential selective pressures act on M. anisopliae Pr1 proteins.
  • Positive selection and functional divergence may lead to new isoforms affecting host specificity and virulence.
  • These evolutionary dynamics contribute to fungal adaptation and pathogenicity.

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