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  • Cascading effects of insecticides and road salt on wetland communities, outdoor mesocosm experiment, New York, USA, 2015
  • Lewis, Jacquelyn L; Rensselaer Polytechnic Institute
    Agostini, Gabriela; Buenos Aires University
    Jones, Devin K; Notre Dame
    Relyea, Rick A; Rensselaer Polytechnic Institute
  • 2021-02-16
  • Lewis, J.L., G. Agostini, D.K. Jones, and R.A. Relyea. 2021. Cascading effects of insecticides and road salt on wetland communities, outdoor mesocosm experiment, New York, USA, 2015 ver 1. Environmental Data Initiative. https://doi.org/DOI_PLACE_HOLDER (Accessed 2024-12-27).
  • Novel stressors introduced by human activities increasingly threaten freshwater ecosystems. The annual application of more than 2.3 billion kg of pesticide active ingredient and 22 billion kg of road salt has led to the contamination of temperate waterways. While pesticides and road salt are known to cause direct and indirect effects in aquatic communities, their possible interactive effects remain widely unknown. Using outdoor mesocosms, we created wetland communities consisting of zooplankton, phytoplankton, periphyton, and leopard frog (Rana pipiens) tadpoles. We evaluated the toxic effects of six broad- spectrum insecticides from three families (neonicotinoids: thiamethoxam, imidacloprid; organophosphates: chlorpyrifos, malathion; pyrethroids: cypermethrin, permethrin), as well as the potentially interactive effects of four of these insecticides with three concentrations of road salt (NaCl; 44, 160, 1600 Cl- mg/L). Organophosphate exposure decreased zooplankton abundance, elevated phytoplankton biomass, and reduced tadpole mass whereas exposure to neonicotinoids and pyrethroids decreased zooplankton abundance but had no significant effect on phytoplankton abundance or tadpole mass. While organophosphates decreased zooplankton abundance at all salt concentrations, effects on phytoplankton abundance and tadpole mass were dependent upon salt concentration. In contrast, while pyrethroids had no effects in the absence of salt, they decreased zooplankton and phytoplankton density under increased salt concentrations. Our results highlight the importance of multiple-stressor research under natural conditions. As human activities continue to imperil freshwater systems, it is vital to move beyond single-stressor experiments that exclude potentially interactive effects of chemical contaminants.

  • N: 42.6761      S: 42.6761      E: -73.6948      W: -73.6948
  • edi.730.1  (Uploaded 2021-02-16)  
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  • DOI PLACE HOLDER
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