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Plastics in the North Atlantic garbage patch: A boat-microbe for hitchhikers and plastic degraders

The Science of The Total Environment 2017 404 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 45 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Didier Debroas, Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Anne Moné, Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Didier Debroas, Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle Alexandra ter Halle

Summary

Researchers examined the microbial communities living on plastic debris in the North Atlantic garbage patch, finding that plastics host unique communities of bacteria, archaea, and eukaryotes distinct from surrounding seawater. The study highlights that floating plastics act as "microbial islands" that could facilitate the long-distance transport of potentially invasive or pathogenic organisms.

Polymers

Plastic is a broad name given to different polymers with high molecular weight that impact wildlife. Their fragmentation leads to a continuum of debris sizes (meso to microplastics) entrapped in gyres and colonized by microorganisms. In the present work, the structure of eukaryotes, bacteria and Archaea was studied by a metabarcoding approach, and statistical analysis associated with network building was used to define a core microbiome at the plastic surface. Most of the bacteria significantly associated with the plastic waste originated from non-marine ecosystems, and numerous species can be considered as hitchhikers, whereas others act as keystone species (e.g., Rhodobacterales, Rhizobiales, Streptomycetales and Cyanobacteria) in the biofilm. The chemical analysis provides evidence for a specific colonization of the polymers. Alphaproteobacteria and Gammaproteobacteria significantly dominated mesoplastics consisting of poly(ethylene terephthalate) and polystyrene. Polyethylene was also dominated by these bacterial classes and Actinobacteria. Microplastics were made of polyethylene but differed in their crystallinity, and the majorities were colonized by Betaproteobacteria. Our study indicated that the bacteria inhabiting plastics harboured distinct metabolisms from those present in the surrounding water. For instance, the metabolic pathway involved in xenobiotic degradation was overrepresented on the plastic surface.

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