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Development of tailored indigenous marine consortia for the degradation of naturally weathered polyethylene films

PLoS ONE 2017 119 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 40 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Fabio Fava, Evdokia Syranidou, Katerina Karkanorachaki, Nicolas Kalogerakis Katerina Karkanorachaki, Evdokia Syranidou, Evdokia Syranidou, Nicolas Kalogerakis Katerina Karkanorachaki, Katerina Karkanorachaki, Evdokia Syranidou, Nicolas Kalogerakis Evdokia Syranidou, Evdokia Syranidou, Katerina Karkanorachaki, Boris A. Kolvenbach, Katerina Karkanorachaki, Katerina Karkanorachaki, Katerina Karkanorachaki, Katerina Karkanorachaki, Boris A. Kolvenbach, Evdokia Syranidou, Nicolas Kalogerakis Nicolas Kalogerakis Boris A. Kolvenbach, Philippe F.-X. Corvini, Nicolas Kalogerakis Fabio Fava, Evdokia Syranidou, Filippo Amorotti, Filippo Amorotti, Boris A. Kolvenbach, Nicolas Kalogerakis E. Repouskou, Fabio Fava, Evdokia Syranidou, Nicolas Kalogerakis E. Repouskou, Kevin J. Kroll, Nicolas Kalogerakis Fabio Fava, Fabio Fava, E. Repouskou, Fabio Fava, Fabio Fava, Fabio Fava, E. Repouskou, Nicolas Kalogerakis Philippe F.-X. Corvini, Boris A. Kolvenbach, Boris A. Kolvenbach, Nicolas Kalogerakis Nicolas Kalogerakis Nicolas Kalogerakis Philippe F.-X. Corvini, Philippe F.-X. Corvini, Fabio Fava, Nicolas Kalogerakis Fabio Fava, Boris A. Kolvenbach, Fabio Fava, Boris A. Kolvenbach, Fabio Fava, Philippe F.-X. Corvini, Nicolas Kalogerakis Philippe F.-X. Corvini, Philippe F.-X. Corvini, Nicolas Kalogerakis

Summary

Researchers developed tailored indigenous marine bacterial consortia for polyethylene degradation, conducting a two-phase microcosm experiment that bioaugmented naturally weathered PE films with strains capable of using low-density polyethylene as a sole carbon source.

Polymers

This study investigated the potential of bacterial-mediated polyethylene (PE) degradation in a two-phase microcosm experiment. During phase I, naturally weathered PE films were incubated for 6 months with the indigenous marine community alone as well as bioaugmented with strains able to grow in minimal medium with linear low-density polyethylene (LLDPE) as the sole carbon source. At the end of phase I the developed biofilm was harvested and re-inoculated with naturally weathered PE films. Bacteria from both treatments were able to establish an active population on the PE surfaces as the biofilm community developed in a time dependent way. Moreover, a convergence in the composition of these communities was observed towards an efficient PE degrading microbial network, comprising of indigenous species. In acclimated communities, genera affiliated with synthetic (PE) and natural (cellulose) polymer degraders as well as hydrocarbon degrading bacteria were enriched. The acclimated consortia (indigenous and bioaugmented) reduced more efficiently the weight of PE films in comparison to non-acclimated bacteria. The SEM images revealed a dense and compact biofilm layer and signs of bio-erosion on the surface of the films. Rheological results suggest that the polymers after microbial treatment had wider molecular mass distribution and a marginally smaller average molar mass suggesting biodegradation as opposed to abiotic degradation. Modifications on the surface chemistry were observed throughout phase II while the FTIR profiles of microbially treated films at month 6 were similar to the profiles of virgin PE. Taking into account the results, we can suggest that the tailored indigenous marine community represents an efficient consortium for degrading weathered PE plastics.

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