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Published on: December 30, 2016
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
Abstract:
Penicillium antifungal protein (PAF) is a promising antimycotic without toxic effects on mammalian cells and therefore may represent a drug candidate against the often lethal Aspergillus infections that occur in humans. The pathogenesis of PAF on sensitive fungi involves G-protein coupled signalling followed by apoptosis. In the present study, the solution structure of this small, cationic, antifungal protein from Penicillium chrysogenum is determined by NMR. We demonstrate that PAF belongs to the structural classification of proteins fold class of its closest homologue antifungal protein from Aspergillus giganteus. PAF comprises five beta-strands forming two orthogonally packed beta-sheets that share a common interface. The ambiguity in the assignment of two disulfide bonds out of three was investigated by NMR dynamics, together with restrained molecular dynamics calculations. The clue could not be resolved: the two ensembles with different disulfide patterns and the one with no S-S bond exhibit essentially the same fold. (15)N relaxation dispersion and interference experiments did not reveal disulfide bond rearrangements via slow exchange. The measured order parameters and the 3.0 ns correlation time are appropriate for a compact monomeric protein of this size. Using site-directed mutagenesis, we demonstrate that the highly-conserved and positively-charged lysine-rich surface region enhances the toxicity of PAF. However, the binding capability of the oligosaccharide/oligonucleotide binding fold is reduced in PAF compared to antifungal protein as a result of less solvent-exposed aromatic regions, thus explaining the absence of chitobiose binding. The present study lends further support to the understanding of the documented substantial differences between the mode of action of two highly homologous antifungal proteins.
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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