Related Experiment Video
Updated: May 9, 2026

Assessing Anti-fungal Activity of Isolated Alveolar Macrophages by Confocal Microscopy
Published on: July 10, 2014
Surface hydrophobin prevents immune recognition of airborne fungal spores
Vishukumar Aimanianda1, Jagadeesh Bayry, Silvia Bozza
1Unité des Aspergillus, Institut Pasteur, Paris F-75015, France.
Abstract:
The air we breathe is filled with thousands of fungal spores (conidia) per cubic metre, which in certain composting environments can easily exceed 10(9) per cubic metre. They originate from more than a hundred fungal species belonging mainly to the genera Cladosporium, Penicillium, Alternaria and Aspergillus. Although these conidia contain many antigens and allergens, it is not known why airborne fungal microflora do not activate the host innate immune cells continuously and do not induce detrimental inflammatory responses following their inhalation. Here we show that the surface layer on the dormant conidia masks their recognition by the immune system and hence prevents immune response. To explore this, we used several fungal members of the airborne microflora, including the human opportunistic fungal pathogen Aspergillus fumigatus, in in vitro assays with dendritic cells and alveolar macrophages and in in vivo murine experiments. In A. fumigatus, this surface 'rodlet layer' is composed of hydrophobic RodA protein covalently bound to the conidial cell wall through glycosylphosphatidylinositol-remnants. RodA extracted from conidia of A. fumigatus was immunologically inert and did not induce dendritic cell or alveolar macrophage maturation and activation, and failed to activate helper T-cell immune responses in vivo. The removal of this surface 'rodlet/hydrophobin layer' either chemically (using hydrofluoric acid), genetically (DeltarodA mutant) or biologically (germination) resulted in conidial morphotypes inducing immune activation. All these observations show that the hydrophobic rodlet layer on the conidial cell surface immunologically silences airborne moulds.
Insights
Airborne fungal spores possess a surface layer that prevents immune system activation. This hydrophobic rodlet layer on conidia, like Aspergillus fumigatus, masks them from immune cells, preventing inflammatory responses.
Area of Science:
- Immunology
- Mycology
- Microbiology
Background:
- Airborne fungal spores (conidia) are abundant and contain allergens.
- The reason airborne fungi don't constantly trigger immune responses is unknown.
- Fungal inhalation can lead to detrimental inflammatory responses.
Purpose of the Study:
- To investigate the mechanism by which airborne fungal spores evade immune detection.
- To identify the component responsible for immune evasion in fungal conidia.
- To determine if removing this component activates immune cells.
Main Methods:
- In vitro assays using dendritic cells and alveolar macrophages.
- In vivo murine experiments.
- Chemical (hydrofluoric acid) and genetic (DeltarodA mutant) removal of the surface layer.
- Biological removal via germination.
Main Results:
- A hydrophobic 'rodlet layer' composed of RodA protein on dormant conidia masks them from immune recognition.
- RodA protein is immunologically inert, failing to activate immune cells in vitro and in vivo.
- Removal of the rodlet layer (chemically, genetically, or biologically) leads to immune activation.
Conclusions:
- The hydrophobic rodlet layer on airborne fungal conidia is responsible for immune silencing.
- This mechanism prevents continuous innate immune cell activation and detrimental inflammatory responses upon inhalation.
- Targeting this layer could have implications for managing fungal-related immune conditions.
Related Concept Videos
Humoral Immune Responses
Defense Mechanism Against Infection
In addition, many body organ systems have unique defenses against infection. The skin is an intact, multilayered surface preventing invasion by microorganisms unless impaired. Mucous membranes lining the mouth, nose, and eyelids are barriers...
Surface Membrane Barriers
The outer layer of the skin, the epidermis, is a robust barrier comprising layers of closely packed keratinized cells. This dense arrangement prevents microbes from penetrating the body. The periodic shedding of epidermal cells...
Defense Against Bacterial Pathogens
Phagocytes
Phagocytes are the frontline soldiers of the immune system. They include neutrophils and macrophages. Neutrophils are the most abundant type of white blood cell and are quickly mobilized to the site of infection. Macrophages are larger cells that patrol...
Immune Response Against Viral Pathogens
NK Cells
NK cells are a crucial part of our innate immune system, acting as the first line of defense against viral infections. These cells can recognize and kill infected cells without prior exposure to the virus, effectively slowing down the spread of infection. Additionally, NK cells produce proinflammatory...
Antifungal Agents

