Efficiency of the Coriolis µ Air Sampling Device for Fungal Contamination Analysis of Indoor Air: A Case Study
Mohamad Al Hallak1, Thomas Verdier2, Alexandra Bertron2
1College of Engineering and Technology, American University of the Middle East, Egaila 54200, Kuwait.
Abstract:
Molds are frequent indoor contaminants, where they can colonize many materials. The subsequent aerosolization of fungal spores from moldy surfaces can strongly impact indoor air quality and the health of occupants. The investigation of fungal contamination of habitations is a key point in evaluating sanitary risks and understanding the relationship that may exist between the fungal presence on surfaces and air contamination. However, to date there is no "gold standard" of sampling indoor air for such investigations. Among various air sampling methods, impingement can be used for capturing fungal spores, as it enables real-time sampling and preserves analytical follow-up. Its efficiency varies depending on several factors, such as spore hydrophobicity, sampling conditions, etc. Sampling devices may also impact the results, with recovery rates sometimes lower than filtration-based methods. The Coriolis µ air sampler, an impingement-based device, utilizes centrifugal force to concentrate airborne particles into a liquid medium, offering flexibility for molecular analysis. Several studies have used this device for air sampling, demonstrating its application in detecting pollen, fungal spores, bacteria, and viruses, but it is most often used in laboratory conditions. The present case study, conducted in a moldy house, aims to investigate the efficiency of this device in sampling fungal spores for DNA analysis in indoor environments. The results obtained suggest that the use of this device requires an optimized methodology to enhance its efficiency and reliability in bioaerosol research.
Insights
This study evaluated the Coriolis µ air sampler for detecting indoor mold spores. Results indicate that optimizing the sampling method is crucial for accurate bioaerosol DNA analysis in homes.
Area of Science:
- Environmental Science
- Microbiology
- Indoor Air Quality
Background:
- Molds are common indoor contaminants affecting air quality and occupant health.
- Assessing indoor fungal contamination is vital for evaluating health risks.
- Standardized methods for indoor air sampling are lacking.
Purpose of the Study:
- To investigate the efficiency of the Coriolis µ air sampler for fungal spore DNA analysis in a real-world indoor environment.
- To evaluate the device's suitability for bioaerosol research in homes.
Main Methods:
- The Coriolis µ air sampler, an impingement-based device, was used in a moldy house.
- Air samples were collected for fungal spore capture and subsequent DNA analysis.
- The study focused on real-time sampling and analytical flexibility.
Main Results:
- The Coriolis µ sampler demonstrated potential for capturing fungal spores in indoor air.
- Device efficiency is influenced by factors like spore hydrophobicity and sampling conditions.
- Recovery rates can be lower than filtration methods, highlighting the need for optimization.
Conclusions:
- The Coriolis µ air sampler can be utilized for indoor fungal spore sampling.
- Optimized methodologies are essential to improve the device's efficiency and reliability for bioaerosol research in domestic settings.
- Further research is needed to establish standardized protocols for home environments.
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