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Published on: May 30, 2020
Characterization and pro-inflammatory potential of indoor mold particles
Jørn A Holme1, Elisabeth Øya1,2, Anani K J Afanou3
1Department of Environmental Health, Norwegian Institute of Public Health, Oslo, Norway.
Abstract:
A number of epidemiological studies find an association between indoor air dampness and respiratory health effects. This is often suggested to be linked to enhanced mold growth. However, the role of mold is obviously difficult to disentangle from other dampness-related exposure including microbes as well as non-biological particles and chemical pollutants. The association may partly be due to visible mycelial growth and a characteristic musty smell of mold. Thus, the potential role of mold exposure should be further explored by evaluating information from experimental studies elucidating possible mechanistic links. Such studies show that exposure to spores and hyphal fragments may act as allergens and pro-inflammatory mediators and that they may damage airways by the production of toxins, enzymes, and volatile organic compounds. In the present review, we hypothesize that continuous exposure to mold particles may result in chronic low-grade pro-inflammatory responses contributing to respiratory diseases. We summarize some of the main methods for detection and characterization of fungal aerosols and highlight in vitro research elucidating how molds may induce toxicity and pro-inflammatory reactions in human cell models relevant for airway exposure. Data suggest that the fraction of fungal hyphal fragments in indoor air is much higher than that of airborne spores, and the hyphal fragments often have a higher pro-inflammatory potential. Thus, hyphal fragments of prevalent mold species with strong pro-inflammatory potential may be particularly relevant candidates for respiratory diseases associated with damp/mold-contaminated indoor air. Future studies linking of indoor air dampness with health effects should assess the toxicity and pro-inflammatory potential of indoor air particulate matter and combined this information with a better characterization of biological components including hyphal fragments from both pathogenic and non-pathogenic mold species. Such studies may increase our understanding of the potential role of mold exposure.
Insights
Indoor mold exposure, particularly hyphal fragments, may cause chronic inflammation linked to respiratory issues. Further research is needed to understand mold
Area of Science:
- Environmental Health
- Microbiology
- Toxicology
Background:
- Epidemiological studies link indoor air dampness to respiratory problems, often attributed to mold growth.
- Disentangling mold's role from other indoor air pollutants is challenging.
- Mold exposure may involve allergens, pro-inflammatory mediators, toxins, and volatile organic compounds.
Purpose of the Study:
- To review evidence on mold's role in respiratory health effects associated with damp indoor environments.
- To explore mechanistic links between mold exposure and inflammation.
- To highlight methods for fungal aerosol detection and characterization.
Main Methods:
- Review of experimental studies on mold toxicity and pro-inflammatory effects.
- Analysis of in vitro research using human airway cell models.
- Summary of methods for detecting and characterizing fungal aerosols.
Main Results:
- Mold exposure, via spores and hyphal fragments, can act as allergens and pro-inflammatory mediators.
- Hyphal fragments are more prevalent than spores in indoor air and possess higher pro-inflammatory potential.
- Continuous mold particle exposure may lead to chronic low-grade inflammation.
Conclusions:
- Mold hyphal fragments are significant contributors to respiratory diseases linked to damp indoor air.
- Further research should assess the toxicity and pro-inflammatory potential of indoor particulate matter, including fungal components.
- Improved characterization of biological components in indoor air is crucial for understanding health impacts.
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