Legacy DDT and its metabolites in Brook Trout from lakes within forested watersheds treated with aerial applications of insecticides
- PMID: 40257977
- PMCID: PMC12011242
- DOI: 10.1371/journal.pone.0320665
Legacy DDT and its metabolites in Brook Trout from lakes within forested watersheds treated with aerial applications of insecticides
Abstract
To manage defoliation from insect outbreaks, about half of the forested land in New Brunswick, Canada, was treated with dichlorodiphenyltrichloroethane (DDT) between 1952 and 1968. Aerial applications of DDT have thus likely increased the risk of chronic effects in aquatic ecosystems from this legacy insecticide given its high persistence in soil and sediments and its bioaccumulation potential within the food web. We investigated DDT and its metabolites (total ΣDDTs = ∑ DDT + ∑ DDD + ∑ DDE) in Brook Trout (Salvelinus fontinalis) associated with geospatial data of historical applications to lake watersheds and sedimentary measures of DDT and its metabolites from five "impact" and two "reference" study lakes. Total ΣDDTs in recent lake sediments were significantly correlated with cumulative DDT applied aerially to the lake's watershed. Brook Trout muscle tissue showed total ΣDDTs that were significantly higher from impact lakes than reference lakes. On average, total ΣDDTs in Brook Trout from impact lakes exceeded ecological guidelines for consumers of aquatic biota by about ten times. Most legacy DDT in Brook Trout and lake sediments were the metabolites ΣDDE and ΣDDD, which suggests the importance of environmental conditions and transport of weathered sources of this organochlorine insecticide to biota. Stable isotopes from fish and common invertebrate prey also suggested that Brook Trout were at a similar trophic position among all study lakes and thus storage pools of legacy DDT likely explain contamination levels within biota. Our findings clearly demonstrate that chronic effects of historical DDT applications likely persist throughout aquatic environments in north-central New Brunswick.
Copyright: © 2025 Kurek et al. This is an open access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
Conflict of interest statement
The authors have declared that no competing interests exist.
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References
-
- Bernhardt ES, Rosi EJ, Gessner MO. Synthetic chemicals as agents of global change. Front Ecol Environ. 2017;15(2):84–90. doi: 10.1002/fee.1450 - DOI
-
- Chang W-Y, Lantz VA, Hennigar CR, MacLean DA. Economic impacts of forest pests: a case study of spruce budworm outbreaks and control in New Brunswick, Canada. Can J For Res. 2012;42(3):490–505. doi: 10.1139/x11-190 - DOI
-
- Pureswaran DS, De Grandpré L, Paré D, Taylor A, Barrette M, Morin H, et al. Climate‐induced changes in host tree–insect phenology may drive ecological state‐shift in boreal forests. Ecology. 2015;96(6):1480–91. doi: 10.1890/13-2366.1 - DOI
-
- Peakall DB, Bart JR, Fowle CD. Impacts of aerial application of insecticides on forest birds. C R C Critical Reviews in Environmental Control. 1983;13(2):117–65. doi: 10.1080/10643388309381705 - DOI
-
- Royama T, MacKinnon WE, Kettela EG, Carter NE, Hartling LK. Analysis of spruce budworm outbreak cycles in New Brunswick, Canada, since 1952. Ecology 2005;86(5):1212-24.
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