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Microplastic Ingestion and Diet Analysis in Migratory Shorebirds at Bahía Lomas Ramsar Site, Chile.

Original title: Microplastic Ingestion and Diet Analysis in Migratory Shorebirds at Bahía Lomas Ramsar Site, Chile.

Environmental research 2026
Ludovica Giovinazzi, Heraldo Norambuena Ramírez, Carmen Espoz Larraín, Erik M Sandvig, Michael Di Gioacchino, Armida Sodo, Massimiliano Scalici, Juan A Amat, Andy J Green, Cristina Coccia

Summary

Scientists found tiny plastic fibers (microplastics) in the sediment, food, and droppings of migratory shorebirds in a remote, protected wetland in Chile — showing that plastic pollution has reached even far-off, seemingly pristine habitats. This matters because these birds are part of the same food chains and coastal ecosystems that eventually connect to the seafood many people eat, suggesting microplastic contamination is becoming nearly impossible to avoid, even in nature's most protected corners.

Polymers

Microplastic (MP) pollution is an emerging threat to marine and coastal ecosystems and their fauna, even in remote and protected areas. Shorebirds depend on wetlands and feed mainly on benthic invertebrates, making them vulnerable to contaminants that accumulate in sediments and their prey. Stable isotope analysis provides a useful framework to interpret microplastic ingestion in relation to trophic ecology. We applied stable isotopes of carbon (δC) and nitrogen (δN) to investigate the diet of three migratory shorebirds: the Two-banded Plover (Anarhynchus falklandicus), the Magellanic Oystercatcher (Haematopus leucopodus), and the Hudsonian Godwit (Limosa haemastica) at Bahía Lomas (Tierra del Fuego, Chile), and we quantified MP ingestion. Stable isotope analyses revealed that the Two-banded Plover exhibited a larger and differentiated isotopic niche respect to the other two species, whose niches width were similar and showed substantial overlap. Mixing models indicated a greater dietary contribution of biofilm for Two-banded Plover, suggesting feeding at lower trophic levels and a stronger association with surface sediments. MPs were detected in sediments, macroinvertebrate prey, and fecal samples of all species, but MP contamination was higher in Two-banded Plover. This difference may be associated with its greater proportional reliance on biofilm. However, this exposure pathway remains hypothetical, as MPs were not directly quantified in biofilm. All detected MPs were fibres, predominantly blue, with polyethylene the most frequent polymer. We provide the first evidence of MP contamination in shorebirds and their trophic resources at Bahia Lomas and anywhere in Chile, illustrating how plastic pollution impacts remote and protected wetlands.

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