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Live Imaging of Antifungal Activity by Human Primary Neutrophils and Monocytes in Response to A. fumigatus
Published on: April 19, 2017
Human Neutrophils Produce Antifungal Extracellular Vesicles against Aspergillus fumigatus
Iordana A Shopova1,2, Ivan Belyaev3,4, Prasad Dasari5
1Institute of Microbiology, Friedrich Schiller University, Jena, Germany.
Abstract:
Polymorphonuclear granulocytes (PMNs) are indispensable for controlling life-threatening fungal infections. In addition to various effector mechanisms, PMNs also produce extracellular vesicles (EVs). Their contribution to antifungal defense has remained unexplored. We reveal that the clinically important human-pathogenic fungus Aspergillus fumigatus triggers PMNs to release a distinct set of antifungal EVs (afEVs). Proteome analyses indicated that afEVs are enriched in antimicrobial proteins. The cargo and the release kinetics of EVs are modulated by the fungal strain confronted. Tracking of afEVs indicated that they associated with fungal cells and even entered fungal hyphae, resulting in alterations in the morphology of the fungal cell wall and dose-dependent antifungal effects. To assess as a proof of concept whether the antimicrobial proteins found in afEVs might contribute to growth inhibition of hyphae when present in the fungal cytoplasm, two human proteins enriched in afEVs, cathepsin G and azurocidin, were heterologously expressed in fungal hyphae. This led to reduced fungal growth relative to that of a control strain producing the human retinol binding protein 7. In conclusion, extracellular vesicles produced by neutrophils in response to A. fumigatus infection are able to associate with the fungus, limit growth, and elicit cell damage by delivering antifungal cargo. This finding offers an intriguing, previously overlooked mechanism of antifungal defense against A. fumigatusIMPORTANCE Invasive fungal infections caused by the mold Aspergillus fumigatus are a growing concern in the clinic due to the increasing use of immunosuppressive therapies and increasing antifungal drug resistance. These infections result in high rates of mortality, as treatment and diagnostic options remain limited. In healthy individuals, neutrophilic granulocytes are critical for elimination of A. fumigatus from the host; however, the exact extracellular mechanism of neutrophil-mediated antifungal activity remains unresolved. Here, we present a mode of antifungal defense employed by human neutrophils against A. fumigatus not previously described. We found that extracellular vesicles produced by neutrophils in response to A. fumigatus infection are able to associate with the fungus, limit growth, and elicit cell damage by delivering antifungal cargo. In the end, antifungal extracellular vesicle biology provides a significant step forward in our understanding of A. fumigatus host pathogenesis and opens up novel diagnostic and therapeutic possibilities.
Insights
Neutrophils release antifungal extracellular vesicles (afEVs) that target Aspergillus fumigatus. These afEVs deliver antimicrobial proteins, inhibit fungal growth, and damage the fungal cell wall, revealing a novel defense mechanism.
Area of Science:
- Immunology
- Mycology
- Cell Biology
Background:
- Polymorphonuclear granulocytes (PMNs) are crucial for combating fungal infections.
- Neutrophils produce extracellular vesicles (EVs), but their role in antifungal defense is unknown.
- Aspergillus fumigatus infections pose a significant clinical challenge due to limited treatment options.
Purpose of the Study:
- To investigate the role of neutrophil-derived EVs in antifungal defense against Aspergillus fumigatus.
- To characterize the composition and function of EVs released by PMNs upon encountering A. fumigatus.
- To explore the potential of these EVs as a novel therapeutic strategy.
Main Methods:
- Triggering PMNs to release EVs upon exposure to A. fumigatus.
- Proteomic analysis of EVs to identify antimicrobial proteins.
- Tracking EV-fungus interactions and assessing effects on fungal morphology and growth.
- Heterologous expression of EV-enriched proteins in fungal hyphae for functional validation.
Main Results:
- A. fumigatus induces PMNs to release distinct antifungal EVs (afEVs) enriched in antimicrobial proteins.
- afEVs associate with fungal hyphae, enter them, alter cell wall morphology, and exhibit dose-dependent antifungal effects.
- Heterologous expression of human proteins cathepsin G and azurocidin in fungi reduced fungal growth.
Conclusions:
- Neutrophil-derived afEVs represent a previously unrecognized mechanism for combating A. fumigatus infections.
- These afEVs deliver antifungal cargo, inhibit fungal growth, and cause cell damage.
- Antifungal EV biology offers promising avenues for novel diagnostic and therapeutic interventions against invasive fungal diseases.
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