Effects of Nylon Microplastic on Feeding, Lipid Accumulation, and Moulting in a Coldwater Copepod
Environmental Science & Technology2019
241 citations
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Score: 55
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Lisbet Sørensen,
Andy M. Booth,
Matthew Cole,
Andy M. Booth,
Tamara S. Galloway,
Matthew Cole,
Sarah E. Reed,
Matthew Cole,
Matthew Cole,
Matthew Cole,
Penelope K. Lindeque
Tamara S. Galloway,
Tamara S. Galloway,
Tamara S. Galloway,
Matthew Cole,
Rachel Coppock,
Rachel Coppock,
Rachel Coppock,
Andy M. Booth,
Rachel Coppock,
Matthew Cole,
Matthew Cole,
Andy M. Booth,
Penelope K. Lindeque
Matthew Cole,
Lisbet Sørensen,
Rachel Coppock,
Matthew Cole,
Matthew Cole,
Rachel Coppock,
Matthew Cole,
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Matthew Cole,
Matthew Cole,
Matthew Cole,
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Tamara S. Galloway,
Tamara S. Galloway,
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Penelope K. Lindeque
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Matthew Cole,
Matthew Cole,
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Dag Altin,
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Penelope K. Lindeque
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Andy M. Booth,
Penelope K. Lindeque
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Dag Altin,
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Tamara S. Galloway,
Matthew Cole,
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Tamara S. Galloway,
Matthew Cole,
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Dag Altin,
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David W. Pond,
Andy M. Booth,
Lisbet Sørensen,
Tamara S. Galloway,
Tamara S. Galloway,
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Penelope K. Lindeque
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Penelope K. Lindeque
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Tamara S. Galloway,
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Lisbet Sørensen,
Tamara S. Galloway,
Tamara S. Galloway,
Penelope K. Lindeque
Tamara S. Galloway,
Lisbet Sørensen,
Andy M. Booth,
Lisbet Sørensen,
Matthew Cole,
Andy M. Booth,
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 exposed the coldwater copepod Calanus finmarchicus to nylon microplastic granules and fibers at environmentally relevant concentrations and measured effects on feeding, lipid accumulation, and development. They found that while microplastic ingestion did not cause acute toxicity, it reduced algal feeding rates and altered lipid storage patterns. The findings suggest that chronic microplastic exposure could impair the energy reserves these copepods need for overwintering and reproduction.
Microplastic debris is a pervasive environmental contaminant that has the potential to impact the health of biota, although its modes of action remain somewhat unclear. The current study tested the hypothesis that exposure to fibrous and particulate microplastics would alter feeding, impacting on lipid accumulation, and normal development (e.g., growth, moulting) in an ecologically important coldwater copepod Calanus finmarchicus. Preadult copepods were incubated in seawater containing a mixed assemblage of cultured microalgae (control), with the addition of ∼50 microplastics mL<sup>-1</sup> of nylon microplastic granules (10-30 μm) or fibers (10 × 30 μm), which are similar in shape and size to the microalgal prey. The additive chemical profiles showed the presence of stabilizers, lubricants, monomer residues, and byproducts. Prey selectivity was significantly altered in copepods exposed to nylon fibers (ANOVA, P < 0.01) resulting in a nonsignificant 40% decrease in algal ingestion rates (ANOVA, P = 0.07), and copepods exposed to nylon granules showed nonsignificant lipid accumulation (ANOVA, P = 0.62). Both microplastics triggered premature moulting in juvenile copepods (Bernoulli GLM, P < 0.01). Our results emphasize that the shape and chemical profile of a microplastic can influence its bioavailability and toxicity, drawing attention to the importance of using environmentally relevant microplastics and chemically profiling plastics used in toxicity testing.