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Histological Quantification to Determine Lung Fungal Burden in Experimental Aspergillosis
Published on: March 9, 2018
Morphology and quantification of fungal growth in residential dust and carpets
Nicholas Nastasi1,2,3, Sarah R Haines1,2,3, Lingyi Xu4
1Department of Civil, Environmental, and Geodetic Engineering, Ohio State University, Columbus, OH, USA.
Abstract:
Mold growth indoors is associated with negative human health effects, and this growth is limited by moisture availability. Dust deposited in carpet is an important source of human exposure due to potential elevated resuspension compared to hard floors. However, we need an improved understanding of fungal growth in dust and carpet to better estimate human exposure. The goal of this study was to compare fungal growth quantity and morphology in residential carpet under different environmental conditions, including equilibrium relative humidity (ERH) (50%, 85%, 90%, 95%, 100%), carpet fiber material (nylon, olefin, wool) and presence/absence of dust. We analyzed incubated carpet and dust samples from three Ohio homes for total fungal DNA, fungal allergen Alt a 1, and fungal morphology. Dust presence and elevated ERH (≥85%) were the most important variables that increased fungal growth. Elevated ERH increased mean fungal DNA concentration (P < 0.0001), for instance by approximately 1000 times at 100% compared to 50% ERH after two weeks. Microscopy also revealed more fungal growth at higher ERH. Fungal concentrations were up to 100 times higher in samples containing house dust compared to no dust. For fiber type, olefin had the least total fungal growth, and nylon had the most total fungi and A. alternata growth in unaltered dust. Increased ERH conditions were associated with increased Alt a 1 allergen concentration. The results of this study demonstrate that ERH, presence/absence of house dust, and carpet fiber type influence fungal growth and allergen production in residential carpet, which has implications for human exposure.
Insights
High humidity and the presence of house dust significantly increase indoor mold growth in carpets. These factors, along with carpet fiber type, impact fungal DNA, allergen levels, and overall fungal presence.
Area of Science:
- Environmental Science
- Mycology
- Indoor Air Quality
Background:
- Indoor mold growth is linked to adverse health outcomes.
- Carpet dust is a significant pathway for human exposure to indoor fungi.
- Understanding fungal growth dynamics in carpets is crucial for exposure assessment.
Purpose of the Study:
- To compare fungal growth quantity and morphology in residential carpets.
- To investigate the influence of equilibrium relative humidity (ERH), carpet fiber type, and dust presence on fungal growth.
- To assess fungal DNA concentration, allergen levels (Alt a 1), and morphology under varied conditions.
Main Methods:
- Incubation of carpet and dust samples from three Ohio homes.
- Analysis of total fungal DNA, fungal allergen Alt a 1, and fungal morphology.
- Controlled environmental conditions including varying ERH levels (50% to 100%), carpet fiber types (nylon, olefin, wool), and presence/absence of dust.
Main Results:
- Elevated ERH (≥85%) and the presence of house dust were key drivers of increased fungal growth.
- Mean fungal DNA concentration increased significantly with ERH, approximately 1000-fold at 100% ERH compared to 50% ERH.
- Fungal concentrations were up to 100 times higher in samples with dust.
- Olefin carpet showed the least fungal growth, while nylon showed the most.
- Increased ERH correlated with higher Alt a 1 allergen concentrations.
Conclusions:
- ERH, house dust, and carpet fiber type significantly influence fungal proliferation and allergen production in residential carpets.
- These findings have direct implications for understanding and mitigating human exposure to indoor fungi and allergens.
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