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.

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.