Airborne antibiotic resistome and microbiome in pharmaceutical factories

Hong Bai1, Liang-Ying He1, Fang-Zhou Gao1

  • 1SCNU Environmental Research Institute, Guangdong Provincial Key Laboratory of Chemical Pollution and Environmental Safety & MOE Key Laboratory of Theoretical Chemistry of Environment, South China Normal University, Guangzhou 510006, China; School of Environment, South China Normal University, University Town, Guangzhou 510006, China.

PubMed

Insights

Airborne transmission spreads antibiotic resistance genes (ARGs) from pharmaceutical factories, with soil and wastewater as major sources. Wastewater treatment areas show higher ARG levels, increasing horizontal gene transfer risks.

Area of Science:

  • Environmental microbiology
  • Public health
  • Genomics

Background:

  • Antimicrobial resistance (AMR) is a major global public health threat.
  • Airborne transmission of antibiotic resistance genes (ARGs) is an under-appreciated environmental spread pathway.
  • Pharmaceutical factories are identified as significant sources of ARGs and antibiotic-resistant bacteria (ARB).

Purpose of the Study:

  • To investigate the airborne microbiome and resistome within three pharmaceutical factories in China.
  • To identify sources and characteristics of airborne ARGs originating from these factories.
  • To assess the potential for horizontal gene transfer and environmental risk associated with airborne ARGs.

Main Methods:

  • Metagenomic sequencing was employed to analyze airborne microbial communities and their associated ARGs.
  • Air samples were collected from three pharmaceutical factory environments.
  • Analysis included identifying ARG sources, quantifying ARG abundance, and assessing plasmid association and viral presence.

Main Results:

  • Soil and wastewater were major contributors to the airborne resistome (38.45% and 28.53%, respectively).
  • Clinically significant ARGs (e.g., vanR/vanS, blaOXA, CfxA) were detected in air samples.
  • Wastewater treatment areas exhibited significantly higher ARG relative abundances (0.64 copies/16S rRNA) and plasmid association (approx. 50%).
  • A high abundance of phages (2451.70 PPM) was observed in wastewater treatment area air.
  • 1,043 viral operational taxonomic units were identified, with various CRISPR-Cas systems present.

Conclusions:

  • Pharmaceutical factories contribute significantly to airborne ARGs, with soil and wastewater as key sources.
  • Airborne ARGs, particularly in wastewater treatment areas, pose environmental risks due to high abundance and plasmid association.
  • The presence of viruses and CRISPR-Cas systems suggests active horizontal gene transfer, potentially amplifying AMR spread.

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