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Macrophage Cholesterol Depletion and Its Effect on the Phagocytosis of Cryptococcus neoformans
Published on: December 19, 2014
Cryptococcus neoformans urease affects the outcome of intracellular pathogenesis by modulating phagolysosomal pH
Man Shun Fu1, Carolina Coelho1, Carlos M De Leon-Rodriguez2
1Department of Molecular Microbiology and Immunology, Johns Hopkins Bloomberg School of Public Health, Baltimore, Maryland, United States of America.
Abstract:
Cryptococcus neoformans is a facultative intracellular pathogen and its interaction with macrophages is a key event determining the outcome of infection. Urease is a major virulence factor in C. neoformans but its role during macrophage interaction has not been characterized. Consequently, we analyzed the effect of urease on fungal-macrophage interaction using wild-type, urease-deficient and urease-complemented strains of C. neoformans. The frequency of non-lytic exocytosis events was reduced in the absence of urease. Urease-positive C. neoformans manifested reduced and delayed intracellular replication with fewer macrophages displaying phagolysosomal membrane permeabilization. The production of urease was associated with increased phagolysosomal pH, which in turn reduced growth of urease-positive C. neoformans inside macrophages. Interestingly, the ure1 mutant strain grew slower in fungal growth medium which was buffered to neutral pH (pH 7.4). Mice inoculated with macrophages carrying urease-deficient C. neoformans had lower fungal burden in the brain than mice infected with macrophages carrying wild-type strain. In contrast, the absence of urease did not affect survival of yeast when interacting with amoebae. Because of the inability of the urease deletion mutant to grow on urea as a sole nitrogen source, we hypothesize urease plays a nutritional role involved in nitrogen acquisition in the environment. Taken together, our data demonstrate that urease affects fitness within the mammalian phagosome, promoting non-lytic exocytosis while delaying intracellular replication and thus reducing phagolysosomal membrane damage, events that could facilitate cryptococcal dissemination when transported inside macrophages. This system provides an example where an enzyme involved in nutrient acquisition modulates virulence during mammalian infection.
Insights
The urease enzyme in Cryptococcus neoformans influences macrophage interactions, promoting fungal survival and potentially aiding dissemination within the host. This urease activity impacts intracellular replication and fungal burden in the brain.
Area of Science:
- Medical Mycology
- Pathogen-Host Interactions
- Microbial Virulence Factors
Background:
- Cryptococcus neoformans is a significant fungal pathogen.
- Macrophage interaction is critical for C. neoformans infection outcomes.
- Urease is a known virulence factor, but its role in macrophage interaction was unclear.
Purpose of the Study:
- To investigate the role of urease in the interaction between C. neoformans and macrophages.
- To characterize how urease affects fungal survival, replication, and host cell damage within macrophages.
Main Methods:
- Comparative analysis of wild-type, urease-deficient, and urease-complemented C. neoformans strains.
- Assessment of fungal-macrophage interactions, including non-lytic exocytosis and intracellular replication.
- Measurement of phagolysosomal pH and fungal growth in vitro and in vivo.
- Evaluation of fungal burden in mouse brains after infection with different fungal strains.
Main Results:
- Urease deficiency reduced non-lytic exocytosis and delayed intracellular replication of C. neoformans.
- Urease-positive fungi showed increased phagolysosomal pH, leading to reduced intracellular growth.
- Mice infected with urease-deficient C. neoformans had lower fungal brain burden.
- Urease did not affect C. neoformans survival in amoebae, suggesting a specific role in mammalian hosts.
Conclusions:
- Urease enhances C. neoformans fitness within the mammalian phagosome.
- Urease promotes non-lytic exocytosis and delays intracellular replication, potentially facilitating dissemination.
- Urease's role in nutrient acquisition may modulate virulence during mammalian infection.
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