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Composition and Distribution Analysis of Bioaerosols Under Different Environmental Conditions
Published on: January 7, 2019
Metagenomic analysis deciphers airborne pathogens with enhanced antimicrobial resistance and virulence factors in
Mo Chen1, Lijun Xing1, Shanshan Gao2
1Beijing Academy of Agriculture and Forestry Sciences, Beijing 100097, PR China.
Abstract:
The composting process has been shown to effectively reduce antimicrobial resistance (AMR) in animal manure, but its influence on surrounding airborne AMR remains unknown, particularly with regard to human-pathogenic antibiotic-resistant bacteria (HPARB). In this study, air and paired compost samples were collected from a full-scale composting facility, and the antibiotic resistome, microbiome, and HPARB were systematically analyzed in both two habitats using metagenomic analysis. Current result uncovered the profiles of HPARB in air, showing that significantly more airborne HPARB were assembled than that in compost samples. Airborne pathogens harboredan increased abundance and diversity of antibiotic resistance genes (ARGs) and virulence factor genes (VFGs) in comparison with compost-borne HPARB. The core antibiotic resistome represents 18.58% of overall ARG subtypes, contributing to 86.31% of ARG abundance. A higher number of enriched core ARGs (2.16- to 13.36-times higher), including mexF, tetW, and vanS, were observed in air samples compared to compost samples. As an important human pathogen, Mycobacterium tuberculosis was prevalent in the air and carried more ARG (6) and VFG (130) subtypes than those in compost. A significantly higher risk score was detected for airborne AMR in the composting facility compared to that in hospital and urban environments. This study revealed the enhanced airborne HPARB through comparative experiments between air and composting habitats. It highlighted the unrecognized AMR risks associated with air in composting site and provided a scientific basis for accurately assessing health outcomes caused by occupational exposure.
Insights
Airborne antimicrobial resistance (AMR) from composting facilities is higher than previously thought. Human-pathogenic antibiotic-resistant bacteria (HPARB) in the air carry more resistance genes, posing unrecognized health risks.
Area of Science:
- Environmental microbiology
- Public health
- Antimicrobial resistance
Background:
- Composting reduces antimicrobial resistance (AMR) in manure but its effect on airborne AMR is unknown.
- Human-pathogenic antibiotic-resistant bacteria (HPARB) are a growing public health concern.
Purpose of the Study:
- To investigate airborne AMR and HPARB in a composting facility.
- To compare airborne and compost-associated AMR profiles.
Main Methods:
- Metagenomic analysis of air and compost samples from a full-scale composting facility.
- Systematic analysis of the antibiotic resistome, microbiome, and HPARB.
Main Results:
- Airborne HPARB were more abundant and diverse than in compost.
- Airborne pathogens had higher numbers of antibiotic resistance genes (ARGs) and virulence factor genes (VFGs).
- Mycobacterium tuberculosis was prevalent in the air, carrying more ARGs and VFGs than in compost.
Conclusions:
- Composting facilities can enhance airborne HPARB, presenting unrecognized AMR risks.
- Airborne AMR in composting sites poses a higher risk than in urban or hospital environments.
- Findings provide a basis for assessing occupational health risks.
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