Active Lungs & Breathing Infection & Immunity

Fungal metabolic adaptation in pulmonary aspergillosis

In plain English

AI plain-English summary

The fungus *Aspergillus fumigatus* splits into two distinct groups based on how fast it grows on different nutrients, and this speed determines how it interacts with the human immune system. This matters because *A. fumigatus* is the world’s dominant fungal lung pathogen, causing everything from acute invasive disease to allergic asthma. Until now, doctors had no way to predict why some infections turn chronic while others become life-threatening. The researchers discovered that slow-growing strains—mostly found in chronic infections—trigger different immune receptors than fast-growing strains, suggesting the fungus adapts its metabolism inside the lung to evade immune detection. If this research succeeds, it could change how clinicians diagnose and treat fungal lung disease. Knowing a strain’s metabolic profile might allow doctors to predict whether an infection will become chronic or invasive, and to tailor antifungal therapies accordingly. The project will also map the genetic basis of these metabolic traits and test how they affect fungal survival in human lung tissue and animal models. This is fundamental science. There is no immediate bedside application. But understanding how a pathogen rewires its metabolism to survive inside a human lung could eventually lead to new diagnostic tests or drugs that target the fungus’s adaptive strategies rather than just killing it outright.

View original technical description
Aspergillus fumigatus is the globally dominant human fungal pathogen, causing a spectrum of pulmonary disease ranging from acute angioinvasive disease to allergic bronchopulmonary aspergillosis. Using high-throughput phenotypic profiling we have discovered two distinct groups of strains based on growth rate on specific carbon and nitrogen sources. Exploiting high-throughput innate immune receptor reporter assays we observed that fast growing strains had novel C-type lectin specificities compared to slow growing strains. Furthermore, slow growing strains were mostly from chronic infections, suggesting in-host metabolic adaptation is linked to innate immune modulation. To further dissect the relationship between metabolism, infection and immunity we will: 1: Define the genetic basis for these metabolic phenotypes using clinical and environmental strains and the Wellcome Trust-funded Aspergillus fumigatus gene deletion collection. 2: Systematically characterise the impact of metabolic phenotype on cell wall composition using clinical and environmental strains and selected gene deletion strains. 3: Investigate the impact of metabolic and cell wall phenotypes on survival in clinically- relevant animal and ex-vivo human infection models. These studies will allow us to define the underpinning mechanisms that link genomics, metabolism and cell wall remodelling during fungal adaptation in the lung, and the impact on fungal survival during clinically-relevant lung immune states.

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Researchers

Alexiane Decout (EPMC Awardee)Antoine Loquet (EPMC Awardee)Darius Armstrong-James (EPMC Awardee)Gerald Larrouy-Maumus (EPMC Awardee)Michael Bromley (EPMC Awardee)Rodrigo Ledesma-Amaro (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Deciphering the Epigenetic Gene Regulatory Landscape in the Major Mould Pathogen of Human Lungs
Dissection of A. fumigatus alkaline adaptation and virulence (with a view to inhibiting fungal growth in vivo)
Defining the single-cell transcriptional and immunological atlas driving antifungal mucosal responses
Molecular dynamics of resistance and persistence of Aspergillus fumigatus
Understanding susceptibility to fungal infection and evolution of antimicrobial resistance in chronic respiratory disease

Original classification

Biology of Fungal Adaptation

Plain English summaries and category classifications on this site are generated by AI and may not perfectly reflect the original research.