Reconstructing host-pathogen interactions: analysis of the intercellular network of macrophages and other immune cells within an Aspergillosis-on-chip model

Abstract The human-pathogenic fungus Aspergillus fumigatus can cause life-threatening infections, particularly in immunosuppressed or neutropenic patients with hematological malignancies. The human antifungal immune response primarily relies on neutrophils with contribution from macrophages, while the roles of unconventional lymphocytes such as Natural Killer (NK) cells and mucosal-associated invariant T (MAIT) cells remain less understood. Therefore, using an advanced microfluidic “invasive aspergillosis-on-chip” (IAC) model, we investigated the coordinated antifungal response of various immune cell types in combination with macrophages within a human tissue-like 3D environment. The IAC model, initially incorporating monocyte-derived macrophages, was enhanced by perfusing either primary neutrophils, NK cells, or MAIT cells for overnight infection experiments. In this model, hyphal growth of A. fumigatus was prevented only when both macrophages and neutrophils were present. However, uncontrolled growth was detected in neutropenic patient scenarios. We observed key interactions such as conidial shuttling and metaforosis between innate immune cells, accompanied by elevated cytokine levels of e.g. IL-1β and TNFα. Importantly, NK cells applied to the vascular compartment of the IAC model significantly reduced hyphal length, confirming their antifungal activity. Similarly, MAIT cells in sufficiently high quantities reduced hyphal growth and branching, although this effect depended on the recognition of riboflavin-derived antigens, as shown by the lack of response to the A. fumigatus ΔriboB mutant strain. Together, our findings demonstrate that the advanced IAC model is a powerful tool to dissect human antifungal immunity. The interactions observed between macrophages and other immune cells highlight the importance of multi-layered defense strategies against A. fumigatus.

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Journal
microLife
Published
2026-09-11
DOI
https://doi.org/10.1093/femsml/uqag034
Primary Topic
3D Printing in Biomedical Research
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article
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article

Reconstructing host-pathogen interactions: analysis of the intercellular network of macrophages and other immune cells within an Aspergillosis-on-chip model

Susann Hartung, Marc Thilo Figge, Hubertus Haas, Stanislaw Schmidt et al.
microLife
3D Printing in Biomedical Research
article

Reconstructing host-pathogen interactions: analysis of the intercellular network of macrophages and other immune cells within an Aspergillosis-on-chip model

Susann Hartung, Marc Thilo Figge, Hubertus Haas, Stanislaw Schmidt, Zoltán Cseresnyés, Susanne Jahreis, Franziska Schmidt, Pauline Porschitz, Simranpreet Kaur, M von Lilienfeld-Toal, Thomas Lehrnbecher-Lanzeni, Svenja Grau, Axel A Brakhage, Hannah Afolayan, Anna Katharina Renner
article en

Abstract

Abstract The human-pathogenic fungus Aspergillus fumigatus can cause life-threatening infections, particularly in immunosuppressed or neutropenic patients with hematological malignancies. The human antifungal immune response primarily relies on neutrophils with contribution from macrophages, while the roles of unconventional lymphocytes such as Natural Killer (NK) cells and mucosal-associated invariant T (MAIT) cells remain less understood. Therefore, using an advanced microfluidic “invasive aspergillosis-on-chip” (IAC) model, we investigated the coordinated antifungal response of various immune cell types in combination with macrophages within a human tissue-like 3D environment. The IAC model, initially incorporating monocyte-derived macrophages, was enhanced by perfusing either primary neutrophils, NK cells, or MAIT cells for overnight infection experiments. In this model, hyphal growth of A. fumigatus was prevented only when both macrophages and neutrophils were present. However, uncontrolled growth was detected in neutropenic patient scenarios. We observed key interactions such as conidial shuttling and metaforosis between innate immune cells, accompanied by elevated cytokine levels of e.g. IL-1β and TNFα. Importantly, NK cells applied to the vascular compartment of the IAC model significantly reduced hyphal length, confirming their antifungal activity. Similarly, MAIT cells in sufficiently high quantities reduced hyphal growth and branching, although this effect depended on the recognition of riboflavin-derived antigens, as shown by the lack of response to the A. fumigatus ΔriboB mutant strain. Together, our findings demonstrate that the advanced IAC model is a powerful tool to dissect human antifungal immunity. The interactions observed between macrophages and other immune cells highlight the importance of multi-layered defense strategies against A. fumigatus.

microLife
Goethe University Frankfurt (DE), Innsbruck Medical University (AT), Czech Academy of Sciences, Institute of Microbiology (CZ), Leibniz-Institut für Naturstoff-Forschung und Infektionsbiologie e. V. - Hans-Knöll-Institut (HKI) (DE), Friedrich Schiller University Jena (DE), Ruhr University Bochum (DE)
Openalex Percentile: Top 20%
3D Printing in Biomedical Research
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