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The Effects of Combined Ocean Acidification and Nanoplastic Exposures on the Embryonic Development of Antarctic Krill

Frontiers in Marine Science 2021 51 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, Tamara S. Galloway, Matthew Cole, Tamara S. Galloway, Matthew Cole, Matthew Cole, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Matthew Cole, Ceri Lewis Matthew Cole, Clara Manno, Matthew Cole, Matthew Cole, Matthew Cole, Clara Manno, Matthew Cole, Emily Rowlands, Matthew Cole, Emily Rowlands, Emily Rowlands, Emily Rowlands, Matthew Cole, Matthew Cole, Emily Rowlands, Emily Rowlands, Matthew Cole, Matthew Cole, Ceri Lewis Emily Rowlands, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Tamara S. Galloway, Matthew Cole, Tamara S. Galloway, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Tamara S. Galloway, Matthew Cole, Tamara S. Galloway, Matthew Cole, Matthew Cole, Tamara S. Galloway, Matthew Cole, 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, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Victoria L. Peck, Sally Thorpe, Clara Manno, Clara Manno, Clara Manno, Ceri Lewis Ceri Lewis Ceri Lewis Ceri Lewis Ceri Lewis Victoria L. Peck, 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, Tamara S. Galloway, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Emily Rowlands, Emily Rowlands, Emily Rowlands, Ceri Lewis Ceri Lewis Ceri Lewis Ceri Lewis Ceri Lewis Ceri Lewis Clara Manno, Matthew Cole, Ceri Lewis Ceri Lewis Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Ceri Lewis Ceri Lewis Tamara S. Galloway, Matthew Cole, Matthew Cole, Ceri Lewis Victoria L. Peck, Matthew Cole, Tamara S. Galloway, Ceri Lewis Sally Thorpe, Matthew Cole, Clara Manno, Ceri Lewis Matthew Cole, Ceri Lewis Matthew Cole, Emily Rowlands, Clara Manno, Sally Thorpe, Matthew Cole, Tamara S. Galloway, Tamara S. Galloway, Clara Manno, Clara Manno, Matthew Cole, Ceri Lewis Sally Thorpe, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Sally Thorpe, Tamara S. Galloway, Tamara S. Galloway, Clara Manno, Tamara S. Galloway, Matthew Cole, Tamara S. Galloway, Tamara S. Galloway, Ceri Lewis Ceri Lewis Ceri Lewis Victoria L. Peck, Tamara S. Galloway, Victoria L. Peck, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Matthew Cole, Tamara S. Galloway, Tamara S. Galloway, Ceri Lewis Matthew Cole, Victoria L. Peck, Matthew Cole, Matthew Cole, Clara Manno, Matthew Cole, Ceri Lewis Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Ceri Lewis Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Ceri Lewis Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Clara Manno, Tamara S. Galloway, Tamara S. Galloway, Sally Thorpe, Sally Thorpe, Sally Thorpe, Sally Thorpe, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Victoria L. Peck, Ceri Lewis Ceri Lewis Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Clara Manno, Ceri Lewis Sally Thorpe, Clara Manno, Clara Manno, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Clara Manno, Tamara S. Galloway, Matthew Cole, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Ceri Lewis Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Tamara S. Galloway, Matthew Cole, Ceri Lewis Ceri Lewis Ceri Lewis Tamara S. Galloway, Ceri Lewis Tamara S. Galloway, Ceri Lewis Ceri Lewis Clara Manno, Ceri Lewis Ceri Lewis Tamara S. Galloway, Tamara S. Galloway, Matthew Cole, Matthew Cole, Matthew Cole, Tamara S. Galloway, Clara Manno, Tamara S. Galloway, Tamara S. Galloway, Ceri Lewis Tamara S. Galloway, Tamara S. Galloway, Ceri Lewis Tamara S. Galloway, Sally Thorpe, Matthew Cole, Ceri Lewis Tamara S. Galloway, Matthew Cole, Tamara S. Galloway, Matthew Cole, Tamara S. Galloway, Tamara S. Galloway, Ceri Lewis

Summary

Researchers studied the combined effects of ocean acidification and nanoplastic exposure on Antarctic krill embryonic development. They found that the interaction between these two stressors produced different outcomes than either stressor alone, with implications for krill survival during early life stages. The study suggests that climate change and plastic pollution may create compounding threats to this ecologically critical Southern Ocean species.

Polymers
Study Type Environmental

In aquatic environments, plastic pollution occurs concomitantly with anthropogenic climate stressors such as ocean acidification. Within the Southern Ocean, Antarctic krill ( Euphausia Superba ) support many marine predators and play a key role in the biogeochemical cycle. Ocean acidification and plastic pollution have been acknowledged to hinder Antarctic krill development and physiology in singularity, however potential multi-stressor effects of plastic particulates coupled with ocean acidification are unexplored. Furthermore, Antarctic krill may be especially vulnerable to plastic pollution due to their close association with sea-ice, a known plastic sink. Here, we investigate the behaviour of nanoplastic [spherical, aminated (NH 2 ), and yellow-green fluorescent polystyrene nanoparticles] in Antarctic seawater and explore the single and combined effects of nanoplastic (160 nm radius, at a concentration of 2.5 μg ml – 1 ) and ocean acidification (pCO 2 ∼900, pH T 7.7) on the embryonic development of Antarctic krill. Gravid female krill were collected in the Atlantic sector of the Southern Ocean (North Scotia Sea). Produced eggs were incubated at 0.5 °C in four treatments (control, nanoplastic, ocean acidification and the multi-stressor scenario of nanoplastic presence, and ocean acidification) and their embryonic development after 6 days, at the incubation endpoint, was determined. We observed that negatively charged nanoplastic particles suspended in seawater from the Scotia Sea aggregated to sizes exceeding the nanoscale after 24 h (1054.13 ± 53.49 nm). Further, we found that the proportion of embryos developing through the early stages to reach at least the limb bud stage was highest in the control treatment (21.84%) and lowest in the multi-stressor treatment (13.17%). Since the biological thresholds to any stressors can be altered by the presence of additional stressors, we propose that future nanoplastic ecotoxicology studies should consider the changing global ocean under future climate scenarios for assessments of their impact and highlight that determining the behaviour of nanoplastic particles used in incubation studies is critical to determining their toxicity.

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