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Biolistic Transformation of a Fluorescent Tagged Gene into the Opportunistic Fungal Pathogen Cryptococcus neoformans
Published on: March 19, 2015
Identification of genes involved in the phosphate metabolism in Cryptococcus neoformans
Akio Toh-e1, Misako Ohkusu1, Hao-Man Li1
1Medical Mycology Research Center, Chiba University, Chiba City, Chiba 260-8673, Japan.
Abstract:
Cryptococcus neoformans is a pathogenic basidiomycetous yeast that can cause life-threatening meningoencephalitis in immuno-compromized patients. To propagate in the human body, this organism has to acquire phosphate that functions in cellular signaling pathways and is also an essential component of nucleic acids and phospholipids. Thus it is reasonable to assume that C. neoformans (Cn) possesses a phosphate regulatory system (PHO system) analogous to that of other fungi. By BLAST searches using the amino acid sequences of the components of the PHO system of Saccharomyces cerevisiae (Sc), we found potential counterparts to ScPHO genes in C. neoformans, namely, acid phosphatase (CnPHO2), the cyclin-dependent protein kinase (CDK) inhibitor (CnPHO81), Pho85-cyclin (CnPHO80), and CDK (CnPHO85). Disruption of each candidate gene, except CnPHO85, followed by phenotypic analysis, identified most of the basic components of the CnPHO system. We found that CnPHO85 was essential for the growth of C. neoformans, having regulatory function in the CnPHO system. Genetic screening and ChIP analysis, showed that CnPHO4 encodes a transcription factor that binds to the CnPHO genes in a Pi-dependent manner. By RNA-seq analysis of the wild-type and the regulatory mutants of the CnPHO system, we found C. neoformans genes whose expression is controlled by the regulators of the CnPHO system. Thus the CnPHO system shares many properties with the ScPHO system, but expression of those CnPHO genes that encode regulators is controlled by phosphate starvation, which is not the case in the ScPHO system (except ScPHO81). We also could identify some genes involved in the stress response of the pathogenic yeast, but CnPho4 appeared to be responsible only for phosphate starvation.
Insights
Researchers identified the phosphate (PHO) regulatory system in Cryptococcus neoformans, crucial for pathogen survival. This system, involving key genes like PHO4, is regulated by phosphate starvation, differing from related fungi.
Area of Science:
- Mycology
- Molecular Biology
- Pathogenesis
Background:
- Cryptococcus neoformans is an opportunistic fungal pathogen causing severe infections in immunocompromised individuals.
- Phosphate acquisition is vital for fungal growth, cellular signaling, and nucleic acid/phospholipid synthesis.
- The existence of a phosphate (PHO) regulatory system in C. neoformans was hypothesized, analogous to other fungi.
Purpose of the Study:
- To identify and characterize the components of the PHO regulatory system in Cryptococcus neoformans.
- To understand the regulatory mechanisms and gene targets of the CnPHO system.
- To compare the CnPHO system with that of Saccharomyces cerevisiae.
Main Methods:
- BLAST searches using Saccharomyces cerevisiae PHO gene sequences to identify C. neoformans counterparts.
- Gene disruption and phenotypic analysis to determine the function of candidate PHO genes.
- Genetic screening, ChIP analysis, and RNA-seq to identify transcription factors, binding sites, and regulated genes.
Main Results:
- Identified key components of the C. neoformans PHO system, including acid phosphatase (CnPHO2), CDK inhibitor (CnPHO81), Pho85-cyclin (CnPHO80), and CDK (CnPHO85).
- CnPHO85 is essential for C. neoformans growth and has a regulatory role.
- CnPHO4 encodes a transcription factor that binds to CnPHO genes in a phosphate-dependent manner; its expression is regulated by phosphate starvation.
Conclusions:
- The C. neoformans PHO system shares similarities with that of S. cerevisiae but exhibits distinct regulatory control.
- Expression of regulatory genes in the CnPHO system is controlled by phosphate starvation, unlike in S. cerevisiae (except PHO81).
- CnPho4 is specifically involved in regulating the response to phosphate starvation in this pathogenic yeast.
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