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Cumulative effects of ibuprofen and air emersion in zebra mussels Dreissena polymorpha
1Aquatic Contaminants Research Division, Environment and Climate Change Canada, 105 McGill, Montréal, Québec, H2Y 2E7, Canada.
Abstract:
Municipal effluents are major source of pharmaceutical products in the environment. The purpose of this study was to examine the toxicity of a largely used drug, ibuprofen (Ibu), in Dresseina polymorpha mussels and its impact on air survival time. The mussels were exposed to increasing concentration of Ibu (0, 1, 10 and 100μg/L) for 96 at 15°C and a sub-group of mussels was maintain in air for another 96h. Post-exposure mussels (Ibu and Ibu+Air) were analyzed for weight loss, total triglycerides, neutral lipids, lipid peroxidation (LPO), arachidonate-dependent cyclooxygenase (COX) and glutathione S-transferase activity. Lipid extracts of mussel tissues were also analyzed by 1H-nuclear resonance spectroscopy. The data revealed that mussels exposed to Ibu had increased signs of lipid oxidation, neutral lipids and decreased triglycerides, LPO and GST activity. COX activity was significantly reduced by Ibu in keeping with mode of action of the drug. Following exposure to air, increased weight loss, neutral lipids (lipid degradation), were observed in mussels exposed to Ibu but no changes in COX activity were observed. Air stress limited the decrease in triglycerides and the increase in GST in mussels exposed to 100μg/L Ibu indicating decreased anti-oxidant response/phase II biotransformation and limited lipid metabolism. In conclusion, exposure to Ibu has some anti-inflammatory effects to mussels based on COX activity but resulted in increased oxidative damage and lipid catabolism. Exposure to air stress could enhance some of these responses and contribute to decreased resistance to air exposures.
Insights
Municipal effluents release ibuprofen (Ibu), harming Dresseina polymorpha mussels. Ibu causes oxidative damage and lipid breakdown, with air exposure worsening these effects and reducing mussel survival.
Area of Science:
- Environmental toxicology
- Aquatic ecotoxicology
- Marine biology
Background:
- Pharmaceuticals in municipal effluents pose environmental risks.
- Ibuprofen (Ibu) is a widely used drug with potential aquatic toxicity.
- Mussels like Dresseina polymorpha are sensitive indicators of water quality.
Purpose of the Study:
- To investigate the toxicity of ibuprofen (Ibu) on Dresseina polymorpha mussels.
- To assess the impact of Ibu exposure on mussel physiological responses.
- To determine the effect of subsequent air exposure on Ibu-treated mussels.
Main Methods:
- Mussels were exposed to varying concentrations of Ibu (0, 1, 10, 100μg/L) for 96 hours.
- A subgroup of mussels underwent an additional 96-hour exposure to air.
- Physiological parameters measured included weight loss, lipid profiles, lipid peroxidation, COX, and GST activity.
Main Results:
- Ibu exposure increased lipid oxidation and neutral lipids, while decreasing triglycerides, LPO, and GST activity.
- Cyclooxygenase (COX) activity was significantly reduced by Ibu, consistent with its anti-inflammatory action.
- Air stress exacerbated weight loss and neutral lipid increases in Ibu-exposed mussels, indicating enhanced lipid degradation.
Conclusions:
- Ibuprofen exhibits anti-inflammatory effects in mussels via COX inhibition but causes oxidative damage and lipid catabolism.
- Combined Ibu and air stress negatively impacts mussel physiology, potentially reducing their resistance to environmental challenges.
- This study highlights the ecotoxicological risks of pharmaceutical pollution in aquatic ecosystems.
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