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Published on: September 19, 2025
Myeloid Cell States in Influenza-Associated Pulmonary Aspergillosis Are Shaped by Iron Overload and Metabolic
Madeleine S Grau1, Brian P Jackson2, Carol Ringelberg3
1Geisel School of Medicine at Dartmouth, Department of Microbiology & Immunology, Lebanon, NH 03756.
Abstract:
Virus-associated pulmonary aspergillosis is a life-threatening secondary infection that substantially increases morbidity and mortality in critically ill patients with respiratory virus infections. Influenza A virus (IAV) and SARS-CoV2 are known to disrupt pulmonary homeostasis, the mechanisms by which these perturbations render the host susceptibility to Aspergillus fumigatus (Af) remain incompletely understood. Here, we integrate an established murine model of influenza-associated pulmonary aspergillosis (IAPA) with single-cell RNA sequencing (scRNA-seq) to define the myeloid cell dysfunction that underlies IAPA establishment and progression. Single-cell transcriptomic profiling of pulmonary monocytes and macrophages revealed that IAV-Af coinfection drives a marked shift away from interferon-mediated antiviral and antigen presentation programs toward stress-associated and redox-regulatory transcriptional states. Pathway analyses demonstrated coordinated suppression of phagocytic and interferon signaling pathways alongside enrichment of oxidative stress and mitochondrial metabolic signatures - changes that closely recapitulate transcriptional defects previously reported in human IAPA patients. Myeloid cells from IAV-Af coinfected mice further exhibited increased oxidative phosphorylation alongside reduced glycolytic and phagocytic activity, consistent with impaired antifungal effector function. To elucidate how prior IAV infection generates a pulmonary microenvironment permissive to Af growth, we evaluated airway iron availability - a critical determinant of both fungal pathogenicity and immune regulation. IAV infection alone produced a significant elevation in bronchoalveolar iron levels accompanied by induction of iron-associated inflammatory mediators. Paradoxically, during IAV-Af coinfection, myeloid cells displayed markedly reduced expression of iron-sequestering and storage genes, revealing a fundamental disconnect between iron burden and cellular iron-handling capacity. Functionally, elevated iron accelerated Af germination and impaired macrophage-mediated fungal killing. Collectively, these findings identify IAV-induced pulmonary iron accumulation as a key driver of immunometabolic reprogramming in myeloid cells, resulting in compromised antifungal immunity and heightened susceptibility to secondary Af infection.
Insights
Influenza A virus infection disrupts myeloid cell function and iron metabolism in the lungs, increasing susceptibility to secondary Aspergillus fumigatus infections. This research clarifies mechanisms of virus-associated pulmonary aspergillosis.
Area of Science:
- Immunology
- Mycology
- Respiratory Medicine
Background:
- Virus-associated pulmonary aspergillosis (VAPA) is a severe complication in critically ill patients with respiratory viral infections.
- Influenza A virus (IAV) and SARS-CoV2 disrupt lung homeostasis, but mechanisms of susceptibility to Aspergillus fumigatus (Af) are unclear.
Purpose of the Study:
- To define myeloid cell dysfunction in influenza-associated pulmonary aspergillosis (IAPA) using a murine model.
- To investigate the role of iron availability in IAPA pathogenesis.
Main Methods:
- Single-cell RNA sequencing (scRNA-seq) of pulmonary myeloid cells in a murine IAPA model.
- Transcriptomic profiling and pathway analysis.
- Evaluation of airway iron levels and macrophage antifungal function.
Main Results:
- IAV-Af coinfection induced myeloid cell dysfunction, shifting transcriptional states away from antiviral responses towards stress and redox regulation.
- Suppressed phagocytic and interferon signaling pathways were observed, alongside impaired mitochondrial function and reduced fungal killing.
- IAV infection increased airway iron, but coinfection paradoxically decreased myeloid cell iron-handling gene expression, exacerbating Af germination.
Conclusions:
- IAV-induced pulmonary iron accumulation drives immunometabolic reprogramming in myeloid cells.
- This reprogramming compromises antifungal immunity, increasing susceptibility to secondary Af infection.
- Findings elucidate key mechanisms underlying VAPA and suggest therapeutic targets.
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