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Testing the Role of Multicopy Plasmids in the Evolution of Antibiotic Resistance
Published on: May 2, 2018
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.
Abstract:
Microplastics (MPs) are increasingly entering the urban aquatic ecosystems, and the environmental significance and health risks of plastisphere, a special biofilm on MPs, have received widespread attention. In this study, MPs of polylactic acid (PLA) and polyvinyl chloride (PVC) and quartzite were incubated in an urban water environment, and the tetracycline (TC) degradation ability was compared. Approximatedly 24% of TC biodegraded in 28 d in the water-quartzite system, which is significantly higher than that in the water-PLA (17.3%) and water-PVC systems (16.7%). Re-incubation of microorganisms in biofilms affirmed that quartzite biofilm has a higher TC degradation capacity than the plastisphere. According to high-throughput sequencing of 16S rRNA and metagenomic analysis, quartzite biofilm contained more abundant potential TC degrading bacteria, genes related to TC degradation (eutG, aceE, and DLAT), and metabolic pathways related to TC degradation. An oligotrophic environment on the quartzite surface might lead to the higher metabolic capacity of quartzite biofilm for unconventional carbons, e.g., TC. It is also found that, compared with quartzite biofilm, the distinct microbes in the plastisphere carried more antibiotic resistance genes (ARGs). Higher affinity of MPs surface to antibiotics may lead to higher antibiotics stress on the plastisphere, which further amplify the carrying capacity for ARGs of microorganisms in the plastisphere. Compared to the nondegradable PVC MPs, surface of the biodegradable PLA plastics harbored significantly higher amounts of biomass and ARGs. Compared to the mineral particles, the capability of plastisphere has lower ability to degrade unconventional carbon sources such as the refractory organic pollutants, due to the abundance of carbon sources (adsorbed organic carbon and endogenous organic carbon) on the MPs surface. Meanwhile, the stronger adsorption capacity for pollutants also leads to higher pollutant stress (such as antibiotic stress) in plastisphere, which in turn affects the microbiological characteristics of the plastisphere itself, such as carrying more ARGs.
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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