Protein profiling of the dimorphic, pathogenic fungus, Penicillium marneffei

Julie M Chandler1, Erin R Treece2,3, Heather R Trenary2,4

  • 1Proteomics Research Group, Department of Biological Sciences, Youngstown State University, Youngstown, OH 44555-3601, USA.

Proteome Science
|June 6, 2008
PubMed
Abstract

Insights

This study used proteomic analysis to identify proteins involved in the dimorphism of Penicillium marneffei, a fungus causing infections in immunocompromised individuals. Increased expression of RanA, a protein regulating cell processes, was observed during the yeast phase.

Area of Science:

  • Mycology
  • Molecular Biology
  • Proteomics

Background:

  • Penicillium marneffei is a dimorphic fungus causing disease in immunocompromised individuals.
  • Dimorphism, a key factor in pathogenicity, is regulated by temperature-induced phase transition.
  • No specific genes inducing mould-to-yeast conversion have been identified.

Purpose of the Study:

  • To identify proteins associated with morphogenesis in P. marneffei using proteomic approaches.
  • To understand the molecular mechanisms underlying the dimorphic transition.

Main Methods:

  • Two-dimensional gel electrophoresis to resolve whole cell proteins from yeast and mould phases.
  • Capillary-liquid chromatography-nanospray tandem mass spectrometry for protein sequencing.
  • Database searching for homologous fungal sequences to identify proteins.
  • Cloning and characterization of the RanA gene.

Main Results:

  • Proteins common to both phases included cyclophilin and RACK1-like ortholog, involved in signal transduction and metabolism.
  • Mould-specific proteins were related to general metabolism and oxygen radical protection.
  • Proteins with increased expression in the yeast phase included heat-shock response, cell-wall biosynthesis, and a small GTPase, RanA.
  • The P. marneffei RanA gene was cloned and showed 90% homology to Aspergillus proteins.

Conclusions:

  • Proteomic analysis is a valuable tool for studying dimorphism in P. marneffei.
  • This approach complements genetic methods for understanding phase transition.
  • Increased RanA expression suggests novel signaling mechanisms in fungal development.