Functional aspects of the solution structure and dynamics of PAF--a highly-stable antifungal protein from Penicillium

Gyula Batta1, Teréz Barna, Zoltán Gáspári

  • 1Department of Biochemistry, Centre of Arts, Humanities and Sciences, University of Debrecen, Hungary. batta@tigris.unideb.hu

The FEBS Journal
|May 23, 2009
PubMed

Insights

Penicillium antifungal protein (PAF) shows promise against Aspergillus infections. Its structure and lysine-rich surface region contribute to fungal toxicity, while reduced binding explains differences from similar proteins.

Area of Science:

  • Biochemistry
  • Structural Biology
  • Mycology

Background:

  • Penicillium antifungal protein (PAF) is a potential drug candidate for treating lethal Aspergillus infections due to its lack of mammalian cell toxicity.
  • PAF's mechanism involves G-protein coupled signaling and apoptosis in susceptible fungi.

Purpose of the Study:

  • To determine the solution structure of Penicillium chrysogenum PAF using NMR.
  • To investigate the structural and functional differences between PAF and its homolog from Aspergillus giganteus.

Main Methods:

  • Nuclear Magnetic Resonance (NMR) spectroscopy for structure determination.
  • NMR dynamics and restrained molecular dynamics calculations to analyze disulfide bond ambiguity.
  • Site-directed mutagenesis to assess the role of the lysine-rich surface region.

Main Results:

  • The solution structure of PAF was determined, revealing a fold similar to its homolog.
  • Ambiguity regarding disulfide bond placement did not significantly alter the protein's fold.
  • The lysine-rich surface region enhances PAF's antifungal toxicity.
  • Reduced solvent exposure of aromatic regions in PAF limits oligosaccharide/oligonucleotide binding compared to its homolog.

Conclusions:

  • PAF exhibits a conserved fold despite disulfide bond ambiguity, crucial for its antifungal activity.
  • The lysine-rich surface is key to PAF's toxicity, while altered binding explains functional divergence from homologous proteins.
  • Understanding these structural and functional differences aids in developing targeted antifungal therapies.

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