Slower antibiotics degradation and higher resistance genes enrichment in plastisphere

Jiao Wang1, Chu Peng2, Yexin Dai1

  • 1School of Environmental Science and Engineering, Tianjin University, Tianjin 300354, China.

Water Research
|August 14, 2022
PubMed

Insights

Quartzite biofilms degrade tetracycline (TC) more effectively than microplastic biofilms. Microplastic biofilms, especially on biodegradable PLA, harbor more antibiotic resistance genes due to higher pollutant stress.

Area of Science:

  • Environmental Science
  • Microbiology
  • Environmental Chemistry

Background:

  • Microplastics (MPs) are prevalent in urban aquatic systems, raising concerns about the associated plastisphere (biofilm).
  • The degradation capabilities and microbial characteristics of plastisphere compared to natural biofilms are not fully understood.
  • Tetracycline (TC) is a common antibiotic pollutant, and its fate in aquatic environments is critical.

Purpose of the Study:

  • To compare the tetracycline (TC) degradation ability of biofilms on microplastics (polylactic acid - PLA, polyvinyl chloride - PVC) and quartzite in an urban aquatic environment.
  • To investigate the microbial communities and functional genes associated with TC degradation and antibiotic resistance in these biofilms.
  • To elucidate the factors influencing the degradation capacity and antibiotic resistance gene (ARG) profiles of plastisphere versus natural biofilms.

Main Methods:

  • Incubation of PLA, PVC, and quartzite in an urban water environment.
  • Measurement of TC degradation over 28 days.
  • High-throughput sequencing of 16S rRNA for microbial community analysis.
  • Metagenomic analysis to identify genes and metabolic pathways related to TC degradation and ARGs.

Main Results:

  • Quartzite biofilms exhibited significantly higher TC degradation (approx. 24%) compared to PLA (17.3%) and PVC (16.7%) plastispheres.
  • Quartzite biofilms possessed more TC-degrading bacteria, genes (e.g., eutG, aceE, DLAT), and metabolic pathways.
  • Plastispheres, particularly on biodegradable PLA, showed higher biomass and harbored more ARGs than quartzite biofilms, potentially due to increased antibiotic stress.

Conclusions:

  • Quartzite biofilms possess a superior capacity for degrading TC compared to plastispheres.
  • The oligotrophic surface of quartzite may enhance the metabolic potential for degrading unconventional carbon sources like TC.
  • Plastispheres, especially on biodegradable MPs, accumulate more ARGs due to higher pollutant adsorption and stress, posing potential risks to aquatic ecosystems.

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