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Small-Scale Plasma Membrane Preparation for the Analysis of Candida albicans Cdr1-mGFPHis
Published on: June 13, 2021
Proteomic analysis of protein phosphatase Z1 from Candida albicans
Bernadett Márkus1, Krisztina Szabó2, Walter P Pfliegler3
1Proteomics Core Facility, Department of Biochemistry and Molecular Biology, Faculty of Medicine, University of Debrecen, Debrecen, Hungary.
Abstract:
Protein phosphatase Z is a "novel type" fungus specific serine/threonine protein phosphatase. Previously our research group identified the CaPPZ1 gene in the opportunistic pathogen Candida albicans and reported that the gene deletion had several important physiological consequences. In order to reveal the protein targets and the associated mechanisms behind the functions of the phosphatase a proteomic method was adopted for the comparison of the cappz1 deletion mutant and the genetically matching QMY23 control strain. Proteins extracted from the control and deletion mutant strains were separated by two-dimensional gel electrophoresis and the protein spots were stained with RuBPS and Pro-Q Diamond in order to visualize the total proteome and the phosphoproteome, respectively. The alterations in spot intensities were determined by densitometry and were analysed with the Delta2D (Decodon) software. Spots showing significantly different intensities between the mutant and control strains were excised from the gels and were digested with trypsin. The resulting peptides were identified by LC-MS/MS mass spectrometry. As many as 15 protein spots were found that exhibited significant changes in their intensity upon the deletion of the phosphatase and 20 phosphoproteins were identified in which the level of phosphorylation was modified significantly in the mutant. In agreement with previous findings we found that the affected proteins function in protein synthesis, oxidative stress response, regulation of morphology and metabolism. Among these proteins we identified two potential CaPpz1 substrates (Eft2 and Rpp0) that may regulate the elongation step of translation. RT-qPCR experiments revealed that the expression of the genes coding for the affected proteins was not altered significantly. Thus, the absence of CaPpz1 exerted its effects via protein synthesis/degradation and phosphorylation/dephosphorylation. In addition, our proteomics data strongly suggested a role for CaPpz1 in biofilm formation, was confirmed experimentally. Thus our unbiased proteomic approach lead to the discovery of a novel function for this phosphatase in C. albicans.
Insights
Protein Phosphatase Z (CaPPZ1) in Candida albicans regulates protein phosphorylation and impacts cell functions. Proteomics revealed CaPPZ1
Area of Science:
- Mycology
- Biochemistry
- Proteomics
Background:
- Protein Phosphatase Z (PPZ) is a serine/threonine protein phosphatase found in fungi.
- The opportunistic pathogen Candida albicans possesses a PPZ gene, CaPPZ1, whose deletion causes significant physiological changes.
- Understanding CaPPZ1's targets and mechanisms is crucial for elucidating its role in C. albicans.
Purpose of the Study:
- To identify protein targets of CaPPZ1 using a proteomic approach.
- To investigate the mechanisms underlying CaPPZ1's functions in C. albicans.
- To explore novel functions of CaPPZ1, including its role in biofilm formation.
Main Methods:
- Comparative proteomics of a cappz1 deletion mutant and a wild-type control strain (QMY23).
- Two-dimensional gel electrophoresis (2D-PAGE) to separate total proteome and phosphoproteome.
- LC-MS/MS mass spectrometry for peptide identification and quantification of protein abundance and phosphorylation levels.
Main Results:
- 15 protein spots showed significant intensity changes, and 20 phosphoproteins had altered phosphorylation levels in the cappz1 mutant.
- Affected proteins are involved in protein synthesis, oxidative stress response, morphology, and metabolism.
- CaPPZ1 deletion impacts translation elongation via potential substrates Eft2 and Rpp0; gene expression remains largely unchanged.
- Proteomics data suggested a role for CaPPZ1 in biofilm formation, which was experimentally confirmed.
Conclusions:
- CaPPZ1 regulates C. albicans physiology primarily through post-translational modifications (phosphorylation/dephosphorylation) rather than altering gene expression.
- CaPPZ1 plays a significant role in biofilm formation, a newly discovered function.
- This proteomic study provides comprehensive insights into CaPPZ1's substrates and functions in C. albicans.
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