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Published on: October 20, 2020
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.
Background:
Penicillium marneffei is a pathogenic fungus that afflicts immunocompromised individuals having lived or traveled in Southeast Asia. This species is unique in that it is the only dimorphic member of the genus. Dimorphism results from a process, termed phase transition, which is regulated by temperature of incubation. At room temperature, the fungus grows filamentously (mould phase), but at body temperature (37 degrees C), a uninucleate yeast form develops that reproduces by fission. Formation of the yeast phase appears to be a requisite for pathogenicity. To date, no genes have been identified in P. marneffei that strictly induce mould-to-yeast phase conversion. In an effort to help identify potential gene products associated with morphogenesis, protein profiles were generated from the yeast and mould phases of P. marneffei.
Results:
Whole cell proteins from the early stages of mould and yeast development in P. marneffei were resolved by two-dimensional gel electrophoresis. Selected proteins were recovered and sequenced by capillary-liquid chromatography-nanospray tandem mass spectrometry. Putative identifications were derived by searching available databases for homologous fungal sequences. Proteins found common to both mould and yeast phases included the signal transduction proteins cyclophilin and a RACK1-like ortholog, as well as those related to general metabolism, energy production, and protection from oxygen radicals. Many of the mould-specific proteins identified possessed similar functions. By comparison, proteins exhibiting increased expression during development of the parasitic yeast phase comprised those involved in heat-shock responses, general metabolism, and cell-wall biosynthesis, as well as a small GTPase that regulates nuclear membrane transport and mitotic processes in fungi. The cognate gene encoding the latter protein, designated RanA, was subsequently cloned and characterized. The P. marneffei RanA protein sequence, which contained the signature motif of Ran-GTPases, exhibited 90% homology to homologous Aspergillus proteins.
Conclusion:
This study clearly demonstrates the utility of proteomic approaches to studying dimorphism in P. marneffei. Moreover, this strategy complements and extends current genetic methodologies directed towards understanding the molecular mechanisms of phase transition. Finally, the documented increased levels of RanA expression suggest that cellular development in this fungus involves additional signaling mechanisms than have been previously described in P. marneffei.
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.
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