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Updated: May 1, 2026

Biolistic Transformation of a Fluorescent Tagged Gene into the Opportunistic Fungal Pathogen Cryptococcus neoformans
Published on: March 19, 2015
Cryptococcus neoformans dual GDP-mannose transporters and their role in biology and virulence
Zhuo A Wang1, Cara L Griffith1, Michael L Skowyra1
1Department of Molecular Microbiology, Washington University School of Medicine, St. Louis, Missouri, USA.
Abstract:
Cryptococcus neoformans is an opportunistic yeast responsible for lethal meningoencephalitis in humans. This pathogen elaborates a polysaccharide capsule, which is its major virulence factor. Mannose constitutes over one-half of the capsule mass and is also extensively utilized in cell wall synthesis and in glycosylation of proteins and lipids. The activated mannose donor for most biosynthetic reactions, GDP-mannose, is made in the cytosol, although it is primarily consumed in secretory organelles. This compartmentalization necessitates specific transmembrane transporters to make the donor available for glycan synthesis. We previously identified two cryptococcal GDP-mannose transporters, Gmt1 and Gmt2. Biochemical studies of each protein expressed in Saccharomyces cerevisiae showed that both are functional, with similar kinetics and substrate specificities in vitro. We have now examined these proteins in vivo and demonstrate that cells lacking Gmt1 show significant phenotypic differences from those lacking Gmt2 in terms of growth, colony morphology, protein glycosylation, and capsule phenotypes. Some of these observations may be explained by differential expression of the two genes, but others suggest that the two proteins play overlapping but nonidentical roles in cryptococcal biology. Furthermore, gmt1 gmt2 double mutant cells, which are unexpectedly viable, exhibit severe defects in capsule synthesis and protein glycosylation and are avirulent in mouse models of cryptococcosis.
Insights
Cryptococcus neoformans uses two GDP-mannose transporters, Gmt1 and Gmt2, for capsule and cell wall synthesis. Their in vivo roles are distinct, with double mutants showing severe defects and avirulence.
Area of Science:
- Mycology
- Pathogen Biology
- Molecular Genetics
Background:
- Cryptococcus neoformans causes life-threatening meningoencephalitis.
- Its polysaccharide capsule, rich in mannose, is a key virulence factor.
- GDP-mannose, essential for glycosylation, is synthesized in the cytosol but consumed in organelles.
Purpose of the Study:
- To investigate the in vivo roles of two identified GDP-mannose transporters, Gmt1 and Gmt2, in Cryptococcus neoformans.
- To elucidate the functional overlap and distinctions between Gmt1 and Gmt2 in cryptococcal biology.
Main Methods:
- In vivo characterization of single (gmt1, gmt2) and double (gmt1 gmt2) mutant strains.
- Phenotypic analysis including growth, colony morphology, protein glycosylation, and capsule formation.
- Assessment of virulence in a mouse model of cryptococcosis.
Main Results:
- Single gmt1 and gmt2 mutants exhibit distinct phenotypes in growth, morphology, glycosylation, and capsule production.
- Differential gene expression may partially explain observed phenotypes.
- gmt1 gmt2 double mutants are viable but display severe defects in capsule synthesis and protein glycosylation.
- Double mutants are completely avirulent in a murine cryptococcosis model.
Conclusions:
- Gmt1 and Gmt2 play overlapping yet non-identical roles in Cryptococcus neoformans.
- Both transporters are crucial for capsule integrity, protein glycosylation, and virulence.
- Targeting these GDP-mannose transporters represents a potential strategy for cryptococcosis treatment.
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