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Updated: May 26, 2025

Composition and Distribution Analysis of Bioaerosols Under Different Environmental Conditions
Published on: January 7, 2019
Elucidating airborne bacterial communities and their potential pathogenic risks in urban metro environments
Sena Park1, Gihan Lee1, Keum Ju Yoon2
1Department of Environmental Engineering, National Korea Maritime and Ocean University, Busan 49112, Republic of Korea; Interdisciplinary Major of Ocean Renewable Energy Engineering, National Korea Maritime and Ocean University, Busan 49112, Republic of Korea.
Abstract:
Metros are the predominant mode of transportation for urban residents. Because of high passenger volume and pollutant concentrations, concern is growing regarding the potential health hazards of exposure to potential pathogenic airborne bacteria in metros. However, the risks of airborne bacterial communities in metros have not been assessed. Therefore, this study was conducted to explore the airborne bacterial communities and potential pathogenic risk of bacteria in the inner metro train (IM) and metro stations (MS) in Busan, South Korea. The concentrations of culturable total airborne bacteria (CABs) and culturable total airborne Staphylococcus (CAS) were higher in the MS samples than in the IM samples. Bacterial community analysis revealed that although the overall metro environment was dominated by human-associated bacteria, such as Corynebacterium and Staphylococcus genera, the IM and MS samples exhibited significantly distinct core bacterial taxa despite their similar bacterial communities; this is a result of human activity rather than the presence of passengers. Through multilocus sequence typing (MLST), the isolated S. epidermidis from both the IM and MS samples was identified as a human pathogen with four sequence types (ST190, ST54, ST992, and ST817). Furthermore, the MLST results were significantly positively correlated with the CABs and CASs in both the IM and MS samples. The S. aureus infection pathway was predicted in all samples using PICRUSt2 and was significantly higher in the IM samples than in the MS samples. The findings of this study can serve as a reference for developing microbial public health provisions for metro systems.
Insights
Airborne bacteria in metro trains and stations were analyzed. Higher bacterial concentrations were found in stations, with distinct communities in trains and stations, posing potential pathogenic risks.
Area of Science:
- Environmental microbiology
- Public health microbiology
- Urban ecology
Background:
- Metros are crucial for urban transport, but high passenger volume raises concerns about airborne pathogenic bacteria.
- Assessing the health risks of airborne bacterial communities in metro systems is essential.
Purpose of the Study:
- To investigate airborne bacterial communities and pathogenic potential in Busan's metro trains and stations.
- To differentiate bacterial profiles between inner metro (IM) and metro station (MS) environments.
Main Methods:
- Culturable total airborne bacteria (CABs) and Staphylococcus (CAS) concentrations were measured.
- Bacterial community composition was analyzed using sequencing.
- Multilocus sequence typing (MLST) identified pathogenic bacteria, including Staphylococcus epidermidis.
- PICRUSt2 was used to predict infection pathways.
Main Results:
- Metro stations (MS) had higher concentrations of culturable airborne bacteria (CABs) and Staphylococcus (CAS) than inner metro (IM) environments.
- Distinct core bacterial taxa were observed in IM and MS samples, attributed to human activity.
- Isolated Staphylococcus epidermidis strains were identified as human pathogens with four sequence types (ST190, ST54, ST992, ST817).
- MLST results correlated positively with CABs and CASs.
- Staphylococcus aureus infection pathways were predicted to be more prevalent in IM than MS samples.
Conclusions:
- Urban metro environments harbor distinct airborne bacterial communities with pathogenic potential.
- Findings provide a basis for developing public health strategies for microbial safety in metro systems.
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