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Author Spotlight: Advancing Pathogen Detection and Disease Assessment in Real-Time Using M-ROSE
Published on: March 1, 2024
Infectious particle identity determines dissemination and disease outcome for the inhaled human fungal pathogen
Naomi M Walsh1, Michael R Botts1, Andrew J McDermott1,2,3
1Department of Biomolecular Chemistry, School of Medicine and Public Health, University of Wisconsin-Madison, Madison, Wisconsin, United States of America.
Abstract:
The majority of invasive human fungal pathogens gain access to their human hosts via the inhalation of spores from the environment into the lung, but relatively little is known about this infectious process. Among human fungal pathogens the most frequent cause of inhaled fatal fungal disease is Cryptococcus, which can disseminate from the lungs to other tissues, including the brain, where it causes meningoencephalitis. To determine the mechanisms by which distinct infectious particles of Cryptococcus cause disseminated disease, we evaluated two developmental cell types (spores and yeast) in mouse models of infection. We discovered that while both yeast and spores from several strains cause fatal disease, there was a consistently higher fungal burden in the brains of spore-infected mice. To determine the basis for this difference, we compared the pathogenesis of avirulent yeast strains with their spore progeny derived from sexual crosses. Strikingly, we discovered that spores produced by avirulent yeast caused uniformly fatal disease in the murine inhalation model of infection. We determined that this difference in outcome is associated with the preferential dissemination of spores to the lymph system. Specifically, mice infected with spores harbored Cryptococcus in their lung draining lymph nodes as early as one day after infection, whereas mice infected with yeast did not. Furthermore, phagocyte depletion experiments revealed this dissemination to the lymph nodes to be dependent on CD11c+ phagocytes, indicating a critical role for host immune cells in preferential spore trafficking. Taken together, these data support a model in which spores capitalize on phagocytosis by immune cells to escape the lung and gain access to other tissues, such as the central nervous system, to cause fatal disease. These previously unrealized insights into early interactions between pathogenic fungal spores and lung phagocytes provide new opportunities for understanding cryptococcosis and other spore-mediated fungal diseases.
Insights
Fungal spores, unlike yeast, efficiently spread from the lungs to the lymph system by exploiting immune cells. This early dissemination by Cryptococcus spores leads to fatal disease, offering new insights into fungal infections.
Area of Science:
- Mycology
- Infectious Diseases
- Immunology
Background:
- Invasive fungal pathogens often enter the host through lung inhalation.
- Cryptococcus is a leading cause of fatal inhaled fungal disease, capable of disseminating to organs like the brain.
Purpose of the Study:
- To investigate the mechanisms by which different Cryptococcus infectious particles (spores vs. yeast) cause disseminated disease.
- To compare the pathogenesis of Cryptococcus yeast and their spore progeny.
Main Methods:
- Infection of mouse models with Cryptococcus yeast and spores.
- Quantification of fungal burden in host tissues, particularly the brain.
- Phagocyte depletion experiments to assess immune cell involvement in dissemination.
Main Results:
- Both yeast and spores caused fatal disease, but spores led to a higher fungal burden in the brain.
- Spores from avirulent yeast strains caused uniformly fatal disease in the inhalation model.
- Spores preferentially disseminated to lung-draining lymph nodes earlier than yeast.
- Spore dissemination to lymph nodes was dependent on CD11c+ phagocytes.
Conclusions:
- Cryptococcus spores utilize phagocytosis by immune cells to escape the lung and disseminate.
- This immune cell-mediated trafficking facilitates access to systemic sites, including the central nervous system.
- Understanding early host-fungal interactions, particularly with phagocytes, is crucial for cryptococcosis and other spore-mediated diseases.
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