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Updated: May 10, 2025

Composition and Distribution Analysis of Bioaerosols Under Different Environmental Conditions
Published on: January 7, 2019
Seasonal Dynamics of Microbial Communities in PM2.5 and PM10 from a Pig Barn
Qian Tang1,2, Minyang Zhang1, Lili Yu1
1College of Animal Science and Food Engineering, Jinling Institute of Technology, Nanjing 210038, China.
Abstract:
Modern, intensive, high-density farming practices cause elevated concentrations of particulate matter (PM) inside livestock barns. PM in livestock barns is predominantly biological, hence, it contains abundant microorganisms. Understanding the microbial composition of PM is crucial for assessing the hazards of air emitted from livestock barns. PM10 and PM2.5 from a pig barn were collected in winter and spring, and morphological, chemical, and microbial analyses were performed. The PM samples exhibit diverse morphological characteristics. The top three elements detected in the PM samples were O, C, and Si. Other elements, including N, Al, K, Mg, Ca, Na, Zn, P, W, Ba, Fe, S, Cl, and Ti, were also identified in these samples. For bacterial α diversity, the Sobs and Chao1 indices for PM10 were significantly higher than those for PM2.5 in winter (p < 0.05), and in spring, the ACE index for PM10 was significantly higher than that for PM2.5 (p < 0.05). For fungal α diversity, the Shannon index for PM10 was significantly higher than that for PM2.5 in winter (p < 0.01), and in spring, the Ace index for PM10 was significantly higher than that for PM2.5 (p < 0.05). The β diversity results indicate that season, rather than the particle size, had a significant effect on the microbial composition in the PM samples. A total of seven bacterial pathogen genera and 16 fungal allergen genera were identified in PM samples. In winter, the relative abundances of total bacterial pathogens and fungal allergens in PM2.5 were higher than those in PM10. In contrast, the relative abundance of fungal allergens in PM10 was higher in spring than in winter. This study provides a comprehensive characterization of PM from a pig barn across the particle sizes and seasons.
Insights
Particulate matter (PM) in pig barns contains microorganisms. Larger PM10 had higher microbial diversity than smaller PM2.5, with season impacting composition more than size.
Area of Science:
- Environmental Science
- Microbiology
- Agricultural Science
Background:
- Intensive livestock farming generates high concentrations of airborne particulate matter (PM) in barns.
- Barn-generated PM is primarily biological, containing diverse microorganisms.
- Understanding PM microbial composition is vital for assessing air quality and health risks.
Purpose of the Study:
- To characterize the morphological, chemical, and microbial composition of PM10 and PM2.5 from a pig barn.
- To assess the impact of particle size and season on microbial diversity and abundance.
- To identify potential bacterial pathogens and fungal allergens within the PM.
Main Methods:
- Collection of PM10 and PM2.5 samples from a pig barn during winter and spring.
- Morphological, elemental analysis (including O, C, Si, N, Al, K, Mg, Ca, Na, Zn, P, W, Ba, Fe, S, Cl, Ti).
- Microbial analysis, including bacterial and fungal alpha and beta diversity assessments.
Main Results:
- Bacterial and fungal alpha diversity (Sobs, Chao1, ACE, Shannon indices) were generally higher in PM10 than PM2.5.
- Seasonal variation significantly influenced microbial composition more than particle size.
- Seven bacterial pathogen genera and 16 fungal allergen genera were identified; pathogen and allergen abundance varied with season and particle size.
Conclusions:
- PM from pig barns exhibits diverse characteristics and harbors significant microbial loads, including pathogens and allergens.
- Particle size and season are critical factors influencing the microbial profile of airborne PM in livestock environments.
- Findings highlight the need for effective air management strategies in intensive farming to mitigate health risks associated with bioaerosols.
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