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Updated: Jan 30, 2026

Measuring Phagocytosis of Aspergillus fumigatus Conidia by Human Leukocytes using Flow Cytometry
Published on: December 7, 2019
Arp2/3 complex contributes to the actin-dependent uptake of Aspergillus terreus conidia by alveolar epithelial cells
Natalia Mach1, Julien Polleux1, Lea Heinrich1
1Research and Innovation Unit, Heath University of Applied Sciences Tyrol/ fh gesundheit Tirol, Innsbruck, Austria.
Abstract:
Aspergillus terreus is an opportunistic fungal pathogen associated with high mortality rates and intrinsic resistance to amphotericin B. Its ability to persist within host tissues without inducing strong immune responses was suggested to contribute to poor clinical outcomes. The cellular mechanisms underlying A. terreus interactions with host cells remain largely unexplored. In this study, we have used a micropattern-based infection model to investigate the early interactions between A. terreus conidia and alveolar epithelial cells, focusing on the role of Arp2/3-dependent actin remodeling. This system allows quantitative analysis of conidia-cell interactions under defined spatial conditions. We show that A. terreus conidia rapidly bind to micropatterned A549 cell islands, with conidial numbers increasing over time. Conidia were found in actin- and Lamp1-positive vesicles already after one hour of infection. Inhibition of the Arp2/3 complex significantly impaired conidial binding and disrupted the formation of actin-positive vesicles, confirming the essential role of Arp2/3-mediated actin remodeling in early stages of conidial uptake. A subset of conidia was localized to Lamp1-positive phagolysosomes and accumulated over time. Interestingly, we have identified a small but consistent population of Lamp1-positive vesicles decorated with actin structures, potentially resembling actin flashes. These structures were entirely abolished upon Arp2/3 inhibition, indicating active cytoskeletal remodeling at the phagolysosomal interface. Our findings provide the first mechanistic insights into A. terreus internalization by alveolar epithelial cells and establish Arp2/3-mediated actin dynamics as a key process in early host-pathogen interactions. This cellular pathway may further contribute to intracellular trafficking and help understand the delayed onset of A. terreus infections.
Insights
Aspergillus terreus fungal infections are deadly and hard to treat. This study reveals how the fungus enters lung cells, highlighting the crucial role of actin remodeling in this early interaction.
Area of Science:
- Mycology
- Cell Biology
- Infectious Diseases
Background:
- Aspergillus terreus is an opportunistic pathogen causing severe infections with high mortality.
- Its persistence and resistance to antifungal drugs complicate treatment.
- Cellular mechanisms of A. terreus host cell interaction are poorly understood.
Purpose of the Study:
- To investigate early cellular interactions between A. terreus conidia and alveolar epithelial cells.
- To elucidate the role of Arp2/3-dependent actin remodeling in conidial uptake.
- To understand the cellular basis of A. terreus pathogenesis.
Main Methods:
- Utilized a micropattern-based infection model for quantitative analysis.
- Co-cultured A. terreus conidia with A549 alveolar epithelial cells.
- Inhibited the Arp2/3 complex to assess its role in conidial internalization.
Main Results:
- A. terreus conidia rapidly bind to and are internalized by alveolar epithelial cells.
- Conidia are found within actin- and Lamp1-positive vesicles early in infection.
- Arp2/3 complex inhibition significantly reduced conidial binding and vesicle formation.
- Actin structures on phagolysosomes suggest active cytoskeletal remodeling during infection.
Conclusions:
- Arp2/3-mediated actin remodeling is essential for early A. terreus conidial uptake by alveolar cells.
- This process influences intracellular trafficking and may contribute to infection persistence.
- Provides mechanistic insights into A. terreus pathogenesis at the cellular level.
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