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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
Aspergillus fumigatus Cell Wall Promotes Apical Airway Epithelial Recruitment of Human Neutrophils
Michael B Feldman1,2, Richard A Dutko3, Michael A Wood4
1Division of Pulmonary and Critical Care Medicine, Massachusetts General Hospital, Boston, Massachusetts, USA.
Abstract:
Aspergillus fumigatus is a ubiquitous fungal pathogen capable of causing multiple pulmonary diseases, including invasive aspergillosis, chronic necrotizing aspergillosis, fungal colonization, and allergic bronchopulmonary aspergillosis. Intact mucociliary barrier function and early airway neutrophil responses are critical for clearing fungal conidia from the host airways prior to establishing disease. Following inhalation, Aspergillus conidia deposit in the small airways, where they are likely to make their initial host encounter with epithelial cells. Challenges in airway infection models have limited the ability to explore early steps in the interactions between A. fumigatus and the human airway epithelium. Here, we use inverted air-liquid interface cultures to demonstrate that the human airway epithelium responds to apical stimulation by A. fumigatus to promote the transepithelial migration of neutrophils from the basolateral membrane surface to the apical airway surface. Promoting epithelial transmigration with Aspergillus required prolonged exposure with live resting conidia. Swollen conidia did not expedite epithelial transmigration. Using A. fumigatus strains containing deletions of genes for cell wall components, we identified that deletion of the hydrophobic rodlet layer or dihydroxynaphthalene-melanin in the conidial cell wall amplified the epithelial transmigration of neutrophils, using primary human airway epithelium. Ultimately, we show that an as-yet-unidentified nonsecreted cell wall protein is required to promote the early epithelial transmigration of human neutrophils into the airspace in response to A. fumigatus Together, these data provide critical insight into the initial epithelial host response to Aspergillus.
Insights
The human airway epithelium recruits neutrophils to combat Aspergillus fumigatus fungal spores. Specific fungal cell wall components, particularly a nonsecreted protein, are crucial for initiating this early immune response.
Area of Science:
- Pulmonary Medicine
- Mycology
- Immunology
Background:
- Aspergillus fumigatus is a common airborne fungus causing various lung diseases.
- Effective clearance of inhaled fungal spores by the mucociliary barrier and neutrophils is vital to prevent infection.
- Understanding early host-epithelial interactions with Aspergillus is limited.
Purpose of the Study:
- To investigate the early interactions between Aspergillus fumigatus and human airway epithelium.
- To identify mechanisms by which the airway epithelium facilitates neutrophil migration against fungal pathogens.
Main Methods:
- Utilized inverted air-liquid interface cultures of human airway epithelium.
- Exposed the epithelium to live, resting Aspergillus fumigatus conidia.
- Analyzed the impact of conidial cell wall mutations on neutrophil transmigration.
Main Results:
- Human airway epithelium actively promotes neutrophil transepithelial migration in response to Aspergillus.
- Prolonged exposure to live, resting conidia was necessary for this response.
- Mutations affecting the rodlet layer or melanin in the conidial cell wall enhanced neutrophil migration.
- An unidentified, nonsecreted cell wall protein is essential for initiating neutrophil transmigration.
Conclusions:
- The human airway epithelium plays an active role in initiating neutrophil recruitment against Aspergillus fumigatus.
- Specific components of the Aspergillus conidial cell wall, including a nonsecreted protein, are key regulators of this early immune interaction.
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