Three-Dimensional Light Sheet Fluorescence Microscopy of Lungs To Dissect Local Host Immune-Aspergillus fumigatus
Jorge Amich1,2, Zeinab Mokhtari1,2, Marlene Strobel1,2
1Department of Medicine II and IZKF Research Laboratory, Würzburg University Hospital, Würzburg, Germany.
Abstract:
Aspergillus fumigatus is an opportunistic fungal pathogen that can cause life-threatening invasive lung infections in immunodeficient patients. The cellular and molecular processes of infection during onset, establishment, and progression of A. fumigatus infections are highly complex and depend on both fungal attributes and the immune status of the host. Therefore, preclinical animal models are of paramount importance to investigate and gain better insight into the infection process. Yet, despite their extensive use, commonly employed murine models of invasive pulmonary aspergillosis are not well understood due to analytical limitations. Here, we present quantitative light sheet fluorescence microscopy (LSFM) to describe fungal growth and the local immune response in whole lungs at cellular resolution within its anatomical context. We analyzed three very common murine models of pulmonary aspergillosis based on immunosuppression with corticosteroids, chemotherapy-induced leukopenia, or myeloablative irradiation. LSFM uncovered distinct architectures of fungal growth and degrees of tissue invasion in each model. Furthermore, LSFM revealed the spatial distribution, interaction, and activation of two key immune cell populations in antifungal defense: alveolar macrophages and polymorphonuclear neutrophils. Interestingly, the patterns of fungal growth correlated with the detected effects of the immunosuppressive regimens on the local immune cell populations. Moreover, LSFM demonstrates that the commonly used intranasal route of spore administration did not result in complete intra-alveolar deposition, as about 80% of fungal growth occurred outside the alveolar space. Hence, characterization by LSFM is more rigorous than by previously used methods employing murine models of invasive pulmonary aspergillosis and pinpoints their strengths and limitations.IMPORTANCE The use of animal models of infection is essential to advance our understanding of the complex host-pathogen interactions that take place during Aspergillus fumigatus lung infections. As in the case of humans, mice need to suffer an immune imbalance in order to become susceptible to invasive pulmonary aspergillosis (IPA), the most serious infection caused by A. fumigatus There are several immunosuppressive regimens that are routinely used to investigate fungal growth and/or immune responses in murine models of invasive pulmonary aspergillosis. However, the precise consequences of the use of each immunosuppressive model for the local immune populations and for fungal growth are not completely understood. Here, to pin down the scenarios involving commonly used IPA models, we employed light sheet fluorescence microscopy (LSFM) to analyze whole lungs at cellular resolution. Our results will be valuable to optimize and refine animal models to maximize their use in future research.
Insights
Light sheet fluorescence microscopy (LSFM) offers detailed insights into fungal growth and immune responses in mouse models of invasive pulmonary aspergillosis (IPA). This advanced imaging clarifies the impact of immunosuppression and spore deposition, improving preclinical research for this serious fungal infection.
Area of Science:
- Mycology and Immunology
- Infectious Diseases
- Preclinical Animal Modeling
Background:
- Invasive pulmonary aspergillosis (IPA) is a life-threatening infection caused by *Aspergillus fumigatus* in immunocompromised individuals.
- Preclinical animal models are crucial for studying complex host-pathogen interactions in IPA.
- Existing murine models of IPA have analytical limitations, hindering a full understanding of infection dynamics.
Purpose of the Study:
- To employ quantitative light sheet fluorescence microscopy (LSFM) for high-resolution analysis of fungal growth and immune responses in whole mouse lungs.
- To compare and contrast three common murine models of pulmonary aspergillosis induced by corticosteroids, chemotherapy, or irradiation.
- To evaluate the accuracy of spore deposition via intranasal administration in these models.
Main Methods:
- Quantitative light sheet fluorescence microscopy (LSFM) was used to visualize fungal growth and immune cell populations (alveolar macrophages, neutrophils) in whole mouse lungs.
- Three distinct immunosuppressive regimens were analyzed: corticosteroid treatment, chemotherapy-induced leukopenia, and myeloablative irradiation.
- Spatial distribution and cellular interactions were assessed at cellular resolution within the anatomical context of the lung.
Main Results:
- LSFM revealed distinct fungal growth architectures and tissue invasion patterns specific to each immunosuppression model.
- The study identified spatial distribution, interaction, and activation patterns of alveolar macrophages and neutrophils in response to fungal infection.
- Fungal growth patterns correlated with the impact of immunosuppressive regimens on local immune cell populations, and intranasal spore delivery resulted in significant extra-alveolar deposition.
Conclusions:
- LSFM provides a more rigorous characterization of murine models for invasive pulmonary aspergillosis compared to previous methods.
- The findings highlight the strengths and limitations of commonly used immunosuppressive regimens in IPA research.
- This advanced imaging technique can help optimize and refine animal models for more effective preclinical studies of fungal lung infections.
More Related Videos
10:39Advanced Imaging of Lung Homing Human Lymphocytes in an Experimental In Vivo Model of Allergic Inflammation Based on Light-sheet Microscopy
Published on: April 16, 2019
08:50Direct Observation of Phagocytosis and NET-formation by Neutrophils in Infected Lungs using 2-photon Microscopy
Published on: June 2, 2011
