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The global biological microplastic particle sink

Scientific Reports 2020 134 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.
Karin Kvale, A. E. Friederike Prowe, Chia‐Te Chien, Angela Landolfi, Andreas Oschlies

Summary

This study examined the role of biological processes — including ingestion, biofouling, and sinking of fecal pellets — in creating a global biological sink for microplastic particles at depth in the ocean. It estimated that roughly 4% of annual plastic waste enters the ocean, and biological packaging of plastics into dense aggregates and fecal pellets accelerates particle sinking.

Study Type Environmental

Every year, about four percent of the plastic waste generated worldwide ends up in the ocean. What happens to the plastic there is poorly understood, though a growing body of evidence suggests it is rapidly spreading throughout the global ocean. The mechanisms of this spread are straightforward for buoyant larger plastics that can be accurately modelled using Lagrangian particle models. But the fate of the smallest size fractions (the microplastics) are less straightforward, in part because they can aggregate in sinking marine snow and faecal pellets. This biologically-mediated pathway is suspected to be a primary surface microplastic removal mechanism, but exactly how it might work in the real ocean is unknown. We search the parameter space of a new microplastic model embedded in an earth system model to show that biological uptake can significantly shape global microplastic inventory and distributions and even account for the budgetary "missing" fraction of surface microplastic, despite being an inefficient removal mechanism. While a lack of observational data hampers our ability to choose a set of "best" model parameters, our effort represents a first tool for quantitatively assessing hypotheses for microplastic interaction with ocean biology at the global scale.

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