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Macrophage Cholesterol Depletion and Its Effect on the Phagocytosis of Cryptococcus neoformans
Published on: December 19, 2014
Transcriptional Changes in Pulmonary Phagocyte Subsets Dictate the Outcome Following Interaction With The Fungal
Ashlee N Hawkins1, Brenden F Determann1, Benjamin N Nelson1
1Department of Microbiology and Molecular Genetics, Oklahoma State University, Stillwater, OK, United States.
Abstract:
With over 220,000 cases and 180,000 deaths annually, Cryptococcus neoformans is the most common cause of fungal meningitis and a leading cause of death in HIV/AIDS patients in Sub-Saharan Africa. Either C. neoformans can be killed by innate airway phagocytes, or it can survive intracellularly. Pulmonary murine macrophage and dendritic cell (DC) subsets have been identified in the naïve lung, and we hypothesize that each subset has different interactions with C. neoformans. For these studies, we purified murine pulmonary macrophage and DC subsets from naïve mice - alveolar macrophages, Ly6c- and Ly6c+ monocyte-like macrophages, interstitial macrophages, CD11b+ and CD103+ DCs. With each subset, we examined cryptococcal association (binding/internalization), fungicidal activity, intracellular fungal morphology, cytokine secretion and transcriptional profiling in an ex vivo model using these pulmonary phagocyte subsets. Results showed that all subsets associate with C. neoformans, but only female Ly6c- monocyte-like macrophages significantly inhibited growth, while male CD11b+ DCs significantly enhanced fungal growth. In addition, cytokine analysis revealed that some subsets from female mice produced increased amounts of cytokines compared to their counterparts in male mice following exposure to C. neoformans. In addition, although cells were analyzed ex vivo without the influence of the lung microenviroment, we did not find evidence of phagocyte polarization following incubation with C. neoformans. Imaging flow cytometry showed differing ratios of cryptococcal morphologies, c-shaped or budding, depending on phagocyte subset. RNA sequencing analysis revealed the up- and down-regulation of many genes, from immunological pathways (including differential regulation of MHC class I in the antigen processing pathway and the cell adhesion pathway) and pathways relating to relating to metabolic activity (genes in the Cytochrome P450 family, genes related to actin binding, calcium voltage channels, serine proteases, and phospholipases). Future studies gaining a more in-depth understanding on the functionality of individual genes and pathways specific to permissive and non-permissive pulmonary phagocytes will allow identification of key targets when developing therapeutic strategies to prevent cryptococcal meningitis.
Insights
Cryptococcus neoformans causes deadly fungal meningitis, especially in HIV/AIDS patients. Different lung immune cells interact uniquely with the fungus, with some inhibiting growth and others promoting it, revealing potential therapeutic targets.
Area of Science:
- Immunology
- Mycology
- Cell Biology
Background:
- Cryptococcus neoformans is a major cause of fungal meningitis and mortality in HIV/AIDS patients in Sub-Saharan Africa.
- Pulmonary phagocytes, including macrophages and dendritic cells (DCs), are the first line of defense against inhaled C. neoformans.
- Different subsets of pulmonary phagocytes may interact distinctively with C. neoformans, influencing infection outcomes.
Purpose of the Study:
- To investigate the differential interactions between various murine pulmonary macrophage and dendritic cell (DC) subsets and Cryptococcus neoformans.
- To characterize the fungicidal activity, intracellular fungal morphology, cytokine secretion, and transcriptional profiles of these phagocyte subsets upon C. neoformans exposure.
Main Methods:
- Purification of distinct murine pulmonary phagocyte subsets: alveolar macrophages, Ly6c- and Ly6c+ monocyte-like macrophages, interstitial macrophages, CD11b+ and CD103+ DCs.
- Ex vivo analysis of phagocyte-fungus interactions, including association, fungicidal activity, intracellular morphology, cytokine production, and transcriptional profiling via RNA sequencing.
- Utilizing imaging flow cytometry for morphological analysis and RNA sequencing for gene expression profiling.
Main Results:
- All phagocyte subsets associated with C. neoformans, but fungicidal activity varied significantly.
- Female Ly6c- monocyte-like macrophages inhibited C. neoformans growth, while male CD11b+ DCs enhanced it.
- Sex-based differences in cytokine production were observed, with female subsets producing more cytokines.
- RNA sequencing revealed differential gene expression in immunological and metabolic pathways, including MHC class I regulation and Cytochrome P450 family genes.
Conclusions:
- Pulmonary phagocyte subsets exhibit distinct functional responses to C. neoformans, influenced by cell type and sex.
- Understanding these specific interactions and the underlying genetic pathways is crucial for developing targeted therapies against cryptococcal meningitis.
- Identifying permissive and non-permissive phagocytes offers potential targets for novel therapeutic strategies.
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