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Updated: Aug 24, 2026

Collection and Extraction of Occupational Air Samples for Analysis of Fungal DNA
Published on: May 2, 2018
Risk from inhaled mycotoxins in indoor office and residential environments
Bruce J Kelman1, Coreen A Robbins, Lonie J Swenson
1GlobalTox, Inc., Redmond, Washington, USA. BKelman@GlobalTox.Com
Abstract:
Mycotoxins are known to produce veterinary and human diseases when consumed with contaminated foods. Mycotoxins have also been proposed to cause adverse human health effects after inhalation exposure to mold in indoor residential, school, and office environments. Epidemiologic evidence has been inadequate to establish a causal relationship between indoor mold and nonallergic, toxigenic health effects. In this article, the authors model a maximum possible dose of mycotoxins that could be inhaled in 24 h of continuous exposure to a high concentration of mold spores containing the maximum reported concentration of aflatoxins B1 and B2, satratoxins G and H, fumitremorgens B and C, verruculogen, and trichoverrols A and B. These calculated doses are compared to effects data for the same mycotoxins. None of the maximum doses modeled were sufficiently high to cause any adverse effect. The model illustrates the inefficiency of delivery of mycotoxins via inhalation of mold spores, and suggests that the lack of association between mold exposure and mycotoxicoses in indoor environments is due to a requirement for extremely high airborne spore levels and extended periods of exposure to elicit a response. This model is further evidence that human mycotoxicoses are implausible following inhalation exposure to mycotoxins in mold-contaminated home, school, or office environments.
Insights
Inhaling mold spores does not pose a significant risk for mycotoxin-related illnesses. A study modeled high exposure levels, finding doses too low to cause adverse health effects from indoor mold.
Area of Science:
- Environmental Health
- Toxicology
- Mycology
Background:
- Mycotoxins in contaminated food cause human and veterinary diseases.
- Inhalation of indoor mold is suspected to cause nonallergic health effects.
- Epidemiological data is insufficient to link indoor mold to toxigenic effects.
Purpose of the Study:
- To model the maximum potential dose of inhaled mycotoxins from indoor mold.
- To compare calculated inhaled doses with known mycotoxin toxicity data.
- To assess the plausibility of mycotoxicoses from indoor mold inhalation.
Main Methods:
- Modeled 24-hour continuous inhalation exposure to high mold spore concentrations.
- Included maximum reported concentrations of specific mycotoxins (e.g., aflatoxins, satratoxins).
- Compared modeled doses to established mycotoxin effects data.
Main Results:
- Calculated maximum inhaled mycotoxin doses were below levels causing adverse effects.
- The model demonstrated inefficient mycotoxin delivery via inhalation of mold spores.
- High airborne spore concentrations and prolonged exposure are likely required for toxic effects.
Conclusions:
- Human mycotoxicoses are unlikely from inhaling mycotoxins in typical indoor environments.
- The lack of association is due to low inhaled doses and inefficient delivery.
- Further evidence suggests indoor mold inhalation is not a primary route for mycotoxicosis.
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