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Published on: October 31, 2019
Microbial colonization of different microplastic types and biotransformation of sorbed PCBs by a marine anaerobic
Antonella Rosato1, Monica Barone2, Andrea Negroni1
1Dept. of Civil, Chemical, Environmental and Materials Engineering (DICAM), Alma Mater Studiorum University of Bologna, Via Terracini 28, 40131 Bologna, Italy.
Abstract:
We investigated the colonization dynamics of different microplastic (MP) pellets, namely, polyethylene (PE), polyethylene terephthalate (PET), polystyrene (PS), polypropylene (PP) and polyvinyl chloride (PVC), either pristine or contaminated with polychlorinated biphenyls (PCBs), by an organohalide respiring marine microbial community and its biotransformation activity towards PCBs sorbed on MPs, in anaerobic laboratory microcosms of a marine sediment. All MPs were rapidly colonized by the microbial community within 2 weeks of incubation, when approximately 1010 16S rRNA gene copies cm-2 were detected on PVC, 109 copies cm-2 on PE, and 108 copies cm-2 on PET, PP and PS. A greater biofilm growth on PVC pellets than other MPs was confirmed by quantification of the reducing sugars of the EPS and biofilm staining with crystal violet. Illumina sequencing of the 16S rRNA genes and Principal Coordinate Analysis (PCoA) revealed that the biofilm community on MPs significantly differed from the sediment community, being enriched of chemoorganotrophic fermenting species, and was significantly affected by the type of polymer. The presence of sorbed PCBs did not significantly affect the overall community composition, and mainly resulted in the enrichment of Dehalococcoidia, i.e., of the organohalide respiring members of the community. Reductive dechlorination of PCBs sorbed to MPs was observed after 2 weeks of incubation, when the average number of chlorines per biphenyl molecule was reduced from 5.2 to 4.8-4.3, and was faster (35.2 ± 1.9 to 61.2 ± 5.8 μmol of Cl removed kgMP-1 week-1) than that of sediment-sorbed ones (33.9 ± 9.1 μmol of Cl removed kgsediment-1 week-1), which started only after 10 weeks of incubation. These data suggest that microbial colonization of contaminated MPs might change the composition of sorbed PCB mixtures and therefore the toxicity associated to PCB-polluted MPs.
Insights
Marine microbes rapidly colonize microplastics (MPs), altering polychlorinated biphenyls (PCBs) composition. This microbial activity on MPs enhances PCB dechlorination faster than in sediment, impacting pollutant toxicity.
Area of Science:
- Environmental microbiology
- Marine science
- Polymer science
Background:
- Microplastics (MPs) are pervasive environmental contaminants.
- MPs can sorb persistent organic pollutants like polychlorinated biphenyls (PCBs).
- Marine microbial communities interact with MPs and associated pollutants.
Purpose of the Study:
- To investigate microplastic colonization by marine microbes.
- To assess microbial biotransformation of PCBs sorbed on different microplastic types.
- To compare PCB dechlorination rates on microplastics versus sediment.
Main Methods:
- Anaerobic marine sediment microcosms with various microplastic types (PE, PET, PS, PP, PVC).
- Microplastic colonization assessed by 16S rRNA gene quantification and biofilm staining.
- Microbial community structure analyzed using Illumina sequencing and PCoA.
- PCB dechlorination quantified by measuring the reduction in chlorine atoms per biphenyl molecule.
Main Results:
- Rapid and significant microbial colonization of all tested microplastics within two weeks.
- Polyvinyl chloride (PVC) showed greater biofilm formation compared to other MPs.
- Microplastic-associated microbial communities differed from sediment communities, enriched in chemoorganotrophic fermenters.
- Enrichment of Dehalococcoidia observed on PCBs-contaminated MPs, indicating organohalide respiration.
- Faster reductive dechlorination of PCBs sorbed on MPs compared to sediment-sorbed PCBs.
Conclusions:
- Microbial colonization of microplastics alters the marine microbial community structure.
- Microplastics act as substrates that enhance the degradation of sorbed PCBs.
- Microplastic-associated PCB biotransformation can modify pollutant mixtures and associated toxicity.
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