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Short-term impacts of polyethylene and polyacrylonitrile microplastics on soil physicochemical properties and microbial activity of a marine terrace environment in maritime Antarctica

Environmental Pollution 2024 8 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count.
Caik Oliveira de Miranda, José João Lelis Leal de Souza, Carlos Ernesto Gonçalves Reynaud Schaefer, Esperanza Huerta Lwanga, Fernando Nadal Junqueira Villela

Summary

Researchers conducted short-term experiments adding polyethylene and polyacrylonitrile microplastics to Antarctic soil, finding measurable changes in physicochemical properties and microbial activity, raising concerns about microplastic impacts on fragile polar terrestrial ecosystems.

Polymers

Evidence of microplastic (MP) pollution in Antarctic terrestrial environments reinforces concerns about its potential impacts on soil, which plays a major role in ecological processes at ice-free areas. We investigated the effects of two common MP types on soil physicochemical properties and microbial responses of a marine terrace from Fildes Peninsula (King George Island, Antarctica). Soils were treated with polyethylene (PE) fragments and polyacrylonitrile (PAN) fibers at environmentally relevant doses (from 0.001% to 1% w w), in addition to a control treatment (0% w w), for 22 days in a pot incubation experiment under natural field conditions. The short-term impacts of MPs on soil physical, chemical and microbial attributes seem interrelated and were affected by both MP dose and type. The highest PAN fiber dose (0.1%) increased macro and total porosity, but decreased soil bulk density compared to control, whereas PE fragments treatments did not affect soil porosity. Soil respiration increased with increasing doses of PAN fibers reflecting impacts on physical properties. Both types of MPs increased microbial activity (fluorescein diacetate hydrolysis), decreased the cation exchange capacity but, especially PE fragments, increased Na saturation. The highest dose of PAN fibers and PE fragments increased total nitrogen and total organic carbon, respectively, and both decreased the soil pH. We discussed potential causes for our findings in this initial assessment and addressed the need for further research considering the complexity of environmental factors to better understand the cumulative impacts of MP pollution in Antarctic soil environments.

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