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Published on: October 20, 2020
Employing proteomic analysis to compare Paracoccidioides lutzii yeast and mycelium cell wall proteins
Danielle Silva Araújo1, Patrícia de Sousa Lima2, Lilian Cristiane Baeza1
1Laboratório de Biologia Molecular, Instituto de Ciências Biológicas, ICB II, Campus II, Universidade Federal de Goiás, 74001-970 Goiânia, Goiás, Brazil.
Abstract:
Paracoccidioidomycosis is an important systemic mycosis caused by thermodimorphic fungi of the Paracoccidioides genus. During the infective process, the cell wall acts at the interface between the fungus and the host. In this way, the cell wall has a key role in growth, environment sensing and interaction, as well as morphogenesis of the fungus. Since the cell wall is absent in mammals, it may present molecules that are described as target sites for new antifungal drugs. Despite its importance, up to now few studies have been conducted employing proteomics in for the identification of cell wall proteins in Paracoccidioides spp. Here, a detailed proteomic approach, including cell wall-fractionation coupled to NanoUPLC-MSE, was used to study and compare the cell wall fractions from Paracoccidioides lutzii mycelia and yeast cells. The analyzed samples consisted of cell wall proteins extracted by hot SDS followed by extraction by mild alkali. In summary, 512 proteins constituting different cell wall fractions were identified, including 7 predicted GPI-dependent cell wall proteins that are potentially involved in cell wall metabolism. Adhesins previously described in Paracoccidioides spp. such as enolase, glyceraldehyde-3-phosphate dehydrogenase were identified. Comparing the proteins in mycelium and yeast cells, we detected some that are common to both fungal phases, such as Ecm33, and some specific proteins, as glucanase Crf1. All of those proteins were described in the metabolism of cell wall. Our study provides an important elucidation of cell wall composition of fractions in Paracoccidioides, opening a way to understand the fungus cell wall architecture.
Insights
This study used proteomics to identify 512 cell wall proteins in Paracoccidioides lutzii, revealing potential drug targets for treating paracoccidioidomycosis. Key proteins involved in cell wall metabolism were identified in both mycelial and yeast forms.
Area of Science:
- Mycology
- Proteomics
- Infectious Diseases
Background:
- Paracoccidioidomycosis is a systemic fungal infection caused by Paracoccidioides fungi.
- The fungal cell wall is crucial for fungal survival and interacts with the host, making it a potential target for antifungal drugs.
- Few proteomic studies have focused on identifying cell wall proteins in Paracoccidioides species.
Purpose of the Study:
- To comprehensively identify and compare cell wall proteins from both mycelial and yeast forms of Paracoccidioides lutzii using a detailed proteomic approach.
- To investigate potential novel antifungal drug targets by analyzing the unique cell wall composition.
Main Methods:
- Cell wall proteins were extracted from Paracoccidioides lutzii using hot SDS and mild alkali.
- Proteins were analyzed using NanoUPLC-MS^E (mass spectrometry).
- Comparative proteomic analysis was performed between mycelial and yeast cell wall fractions.
Main Results:
- A total of 512 cell wall proteins were identified across different fractions.
- Seven predicted GPI-dependent proteins potentially involved in cell wall metabolism were discovered.
- Known adhesins like enolase and glyceraldehyde-3-phosphate dehydrogenase were identified.
- Proteins common to both phases (e.g., Ecm33) and phase-specific proteins (e.g., glucanase Crf1) were detected.
Conclusions:
- This study provides a significant advancement in understanding the cell wall composition of Paracoccidioides species.
- The identified proteins offer insights into fungal cell wall architecture and metabolism.
- The findings pave the way for developing new therapeutic strategies against paracoccidioidomycosis by targeting cell wall components.

