Aspergillus fumigatus Drives Tissue Damage via Iterative Assaults upon Mucosal Integrity and Immune Homeostasis
Uju Joy Okaa1,2, Margherita Bertuzzi2, Rachael Fortune-Grant2
1Centre for Host-Microbiome Interactions, Faculty of Dentistry, Oral & Craniofacial Sciences, King's College London, London, United Kingdom.
Abstract:
The human lung is constantly exposed to Aspergillus fumigatus spores, the most prevalent worldwide cause of fungal respiratory disease. Pulmonary tissue damage is a unifying feature of Aspergillus-related diseases; however, the mechanistic basis of damage is not understood. In the lungs of susceptible hosts, A. fumigatus undergoes an obligatory morphological switch involving spore germination and hyphal growth. We modeled A. fumigatus infection in cultured A549 human pneumocytes, capturing the phosphoactivation status of five host signaling pathways, nuclear translocation and DNA binding of eight host transcription factors, and expression of nine host response proteins over six time points encompassing exposures to live fungus and the secretome thereof. The resulting data set, comprised of more than 1,000 data points, reveals that pneumocytes mount differential responses to A. fumigatus spores, hyphae, and soluble secreted products via the NF-κB, JNK, and JNK + p38 pathways, respectively. Importantly, via selective degradation of host proinflammatory (IL-6 and IL-8) cytokines and growth factors (FGF-2), fungal secreted products reorchestrate the host response to fungal challenge as well as driving multiparameter epithelial damage, culminating in cytolysis. Dysregulation of NF-κB signaling, involving sequential stimulation of canonical and noncanonical signaling, was identified as a significant feature of host damage both in vitro and in a mouse model of invasive aspergillosis. Our data demonstrate that composite tissue damage results from iterative (repeated) exposures to different fungal morphotypes and secreted products and suggest that modulation of host responses to fungal challenge might represent a unified strategy for therapeutic control of pathologically distinct types of Aspergillus-related disease.
Insights
Aspergillus fumigatus damages lungs by altering host cell responses. Fungal products degrade immune signals, causing cell damage and cytolysis, highlighting NF-κB pathway dysregulation in disease.
Area of Science:
- * Pulmonary immunology and mycology.
- * Host-pathogen interactions.
- * Cellular signaling and damage mechanisms.
Background:
- * *Aspergillus fumigatus* is a common airborne fungus causing respiratory diseases.
- * Pulmonary tissue damage is characteristic of *Aspergillus*-related diseases, but mechanisms remain unclear.
- * *A. fumigatus* undergoes morphological changes from spores to hyphae during infection.
Purpose of the Study:
- * To elucidate the mechanistic basis of pulmonary tissue damage caused by *A. fumigatus*.
- * To investigate host cellular responses to different fungal forms and secreted products.
- * To identify key signaling pathways involved in host damage.
Main Methods:
- * *In vitro* modeling of *A. fumigatus* infection in A549 human pneumocytes.
- * Quantification of host signaling pathways, transcription factor activity, and protein expression over time.
- * Analysis of host responses to fungal spores, hyphae, and secretome.
Main Results:
- * Pneumocytes exhibit differential responses to *A. fumigatus* spores, hyphae, and secreted products via NF-κB, JNK, and JNK + p38 pathways.
- * Fungal secreted products degrade host cytokines (IL-6, IL-8) and growth factors (FGF-2), reorchestrating the host response.
- * Dysregulation of NF-κB signaling is a key feature of host damage, observed both *in vitro* and in a mouse model.
Conclusions:
- * *A. fumigatus* causes composite tissue damage through iterative exposures to different fungal forms and secreted products.
- * Fungal secreted products actively manipulate host responses to promote epithelial damage and cytolysis.
- * Targeting host responses to fungal challenge may offer a unified therapeutic strategy for diverse *Aspergillus*-related diseases.
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