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Benthic fauna contribute to microplastic sequestration in coastal sediments

Journal of Hazardous Materials 2021 75 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 55 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Penelope K. Lindeque Penelope K. Lindeque Penelope K. Lindeque Penelope K. Lindeque Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Pinja Näkki, Pinja Näkki, Pinja Näkki, Pinja Näkki, Pinja Näkki, Pinja Näkki, Rachel Coppock, Rachel Coppock, Rachel Coppock, Rachel Coppock, Rachel Coppock, Rachel Coppock, Rachel Coppock, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Penelope K. Lindeque Penelope K. Lindeque Penelope K. Lindeque Penelope K. 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Galloway, Penelope K. Lindeque Tamara S. Galloway, Matthew Cole, Tamara S. Galloway, Rachel Coppock, Tamara S. Galloway, Matthew Cole, Matthew Cole, Matthew Cole, Tamara S. Galloway, Rachel Coppock, Matthew Cole, Matthew Cole, Rachel Coppock, Penelope K. Lindeque Tamara S. Galloway, Rachel Coppock, Matthew Cole, Tamara S. Galloway, Matthew Cole, Matthew Cole, Matthew Cole, Tamara S. Galloway, Matthew Cole, Tamara S. Galloway, Matthew Cole, Rachel Coppock, Matthew Cole, Matthew Cole, Penelope K. Lindeque Matthew Cole, Matthew Cole, Penelope K. Lindeque Matthew Cole, Matthew Cole, Tamara S. Galloway, Tamara S. Galloway, Matthew Cole, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Matthew Cole, Tamara S. Galloway, Matthew Cole, Tamara S. Galloway, Penelope K. Lindeque Tamara S. Galloway, Matthew Cole, Tamara S. Galloway, Tamara S. Galloway, Matthew Cole, Tamara S. Galloway, Matthew Cole, Penelope K. Lindeque Penelope K. Lindeque Penelope K. Lindeque Matthew Cole, Penelope K. Lindeque Penelope K. Lindeque Matthew Cole, Tamara S. Galloway, Ana M. Queirós, Tamara S. Galloway, Penelope K. Lindeque Penelope K. Lindeque Matthew Cole, Penelope K. Lindeque Penelope K. Lindeque Penelope K. Lindeque Tamara S. Galloway, Tamara S. Galloway, Penelope K. Lindeque Tamara S. Galloway, Penelope K. Lindeque Penelope K. Lindeque Tamara S. Galloway, Penelope K. Lindeque Matthew Cole, Penelope K. Lindeque Matthew Cole, Penelope K. Lindeque Tamara S. Galloway, Penelope K. Lindeque Tamara S. Galloway, Penelope K. Lindeque Ana M. Queirós, Penelope K. Lindeque Penelope K. Lindeque Penelope K. Lindeque Rachel Coppock, Tamara S. Galloway, Penelope K. Lindeque Tamara S. Galloway, Penelope K. Lindeque Matthew Cole, Tamara S. Galloway, Matthew Cole, Matthew Cole, Tamara S. Galloway, Matthew Cole, Rachel Coppock, Tamara S. Galloway, Matthew Cole, Tamara S. Galloway, Tamara S. Galloway, Matthew Cole, Matthew Cole, Tamara S. Galloway, Pinja Näkki, Matthew Cole, Tamara S. Galloway, Tamara S. Galloway, Matthew Cole, Matthew Cole, Ana M. Queirós, Matthew Cole, Matthew Cole, Tamara S. Galloway, Tamara S. Galloway, Matthew Cole, Penelope K. Lindeque Hannah Birgani, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Penelope K. Lindeque Penelope K. Lindeque Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Hannah Birgani, Tamara S. Galloway, Penelope K. Lindeque Tamara S. Galloway, Tamara S. Galloway, Penelope K. Lindeque Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Saskiya Richards, Saskiya Richards, Penelope K. Lindeque Penelope K. Lindeque Penelope K. Lindeque Penelope K. Lindeque Tamara S. Galloway, Tamara S. Galloway, Penelope K. Lindeque Penelope K. Lindeque Ana M. Queirós, Penelope K. Lindeque Tamara S. Galloway, Tamara S. Galloway, Matthew Cole, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Matthew Cole, Penelope K. Lindeque Tamara S. Galloway, Tamara S. Galloway, Penelope K. Lindeque Penelope K. Lindeque Matthew Cole, Tamara S. Galloway, Penelope K. Lindeque Tamara S. Galloway, Tamara S. Galloway, Matthew Cole, Matthew Cole, Tamara S. Galloway, Rachel Coppock, Tamara S. Galloway, Tamara S. Galloway, Penelope K. Lindeque Tamara S. Galloway, Tamara S. Galloway, Ana M. Queirós, Matthew Cole, Tamara S. Galloway, Matthew Cole, Tamara S. Galloway, Penelope K. Lindeque Matthew Cole, Rachel Coppock, Tamara S. Galloway, Tamara S. Galloway, Penelope K. Lindeque

Summary

Researchers investigated how burrowing seafloor organisms contribute to the burial of microplastics in coastal sediments. They found that benthic fauna actively transport microplastics from the sediment surface to deeper layers through their burrowing and feeding activities. The study suggests that biological processes play a significant role in sequestering microplastics within marine sediments, which has implications for understanding the long-term fate of plastic pollution in the ocean.

Polymers
Study Type Environmental

Microplastics are ubiquitous in the marine environment, however, the mechanisms governing their uptake by, and burial within, seabed habitats are poorly understood. In this study, microplastic burial and its impact on fauna-mediated sedimentary processes was quantified at three coastal sites, and the potential contribution of burrowing faunal communities to this process assessed via functional trait diversity analysis of field data. In addition, laboratory exposures were used to assess whether sediment-processing undertaken by the brittlestar Amphiura filiformis, a key species in the sampled area, could explain the burial of microplastic fibres. Field observations confirmed broad-scale burial of microplastics across the coastal seabed, consistent across sites and seasons, with microplastic sequestration linked to benthic-pelagic exchange pathways, driven by burrowing fauna. Brittlestars were observed to bury and line their burrow walls with microfibres during experiments, and their burial activity was also modified following exposure to nylon fibres, relative to controls. Collectively, these results indicate that biodiverse and functionally important seabed habitats act as microplastic sinks, with burrowing fauna contributing to this process via well-known benthic-pelagic pathways, the rates of which are modified by plastic exposure.

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