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http://hdl.handle.net/1942/49985| Title: | Influence of Age and Exposure Pathway on Copper and Cadmium Mixture Toxicity: A Study on Daphnia magna | Authors: | MAJID, Sanah SMEETS, Karen Valentine, Mubiana K. Blust, Ronny |
Issue Date: | 2026 | Publisher: | Wiley | Source: | Environmental Toxicology, | Status: | Early view | Abstract: | Metal contamination in aquatic ecosystems poses substantial risks to freshwater organisms, with mixture effects often deviatingfrom predictions based on single-metal toxicity. Understanding how age-specific sensitivities and multiple exposure pathwaysinfluence mixture effects is critical for accurate risk assessment. This study investigated the combined toxicity of copper (Cu)and cadmium (Cd) in Daphnia magna. Responses were compared between adults (20–21 days old) and neonates (less than 24 hold) under three exposure scenarios: aqueous-only (0.25 μM Cu, 0.02 μM Cd, and their co-exposure), dietary-only (4.33 × 10 3 ngCu/daphnid and 5.72 × 101 ng Cd/daphnid and their co-exposure, delivered via metal-spiked algae Raphidocelis subcapitata), andcombined aqueous-dietary exposure. Following seven-day exposures, physiological stress indicators (reproduction, growth, andsurvival), metal accumulation, biochemical and transcriptional changes were evaluated. Co-exposure produced functionallysynergistic toxic effects, with neonates showing markedly lower tolerance than adults at equivalent concentrations. Toxicity dif-fered strongly among exposure routes, with combined aqueous–dietary exposure causing the most severe effects, including a 52%reduction in adult reproduction and 30% growth inhibition in neonates. Metal accumulation pattern varied between adults andneonates. Across both life stages, Cu–Cd co-exposures disrupted redox homeostasis, evidenced by elevated reactive oxygen spe-cies and significant alterations in antioxidant enzyme activity. These responses were corroborated by pathway-specific transcrip-tional changes, including upregulation of antioxidant, apoptosis-related, and metal-handling genes, alongside downregulationof development-related genes in neonates. Overall, life stage and exposure pathway emerged as critical determinants of Cu- Cdmixture toxicity. This emphasizes the need of incorporating age-specific sensitivities and realistic multi-metal, multi-pathwayexposures into freshwater risk assessment frameworks. Metal contamination in aquatic ecosystems poses substantial risks to freshwater organisms, with mixture effects often deviating from predictions based on single-metal toxicity. Understanding how age-specific sensitivities and multiple exposure pathways influence mixture effects is critical for accurate risk assessment. This study investigated the combined toxicity of copper (Cu) and cadmium (Cd) in Daphnia magna. Responses were compared between adults (20-21 days old) and neonates (less than 24 h old) under three exposure scenarios: aqueous-only (0.25 μM Cu, 0.02 μM Cd, and their co-exposure), dietary-only (4.33 × 10 3 ng Cu/daphnid and 5.72 × 10 1 ng Cd/daphnid and their co-exposure, delivered via metal-spiked algae Raphidocelis subcapitata), and combined aqueous-dietary exposure. Following seven-day exposures, physiological stress indicators (reproduction, growth, and survival), metal accumulation, biochemical and transcriptional changes were evaluated. Co-exposure produced functionally synergistic toxic effects, with neonates showing markedly lower tolerance than adults at equivalent concentrations. Toxicity differed strongly among exposure routes, with combined aqueous-dietary exposure causing the most severe effects, including a 52% reduction in adult reproduction and 30% growth inhibition in neonates. Metal accumulation pattern varied between adults and neonates. Across both life stages, Cu-Cd co-exposures disrupted redox homeostasis, evidenced by elevated reactive oxygen species and significant alterations in antioxidant enzyme activity. These responses were corroborated by pathway-specific transcrip-tional changes, including upregulation of antioxidant, apoptosis-related, and metal-handling genes, alongside downregulation of development-related genes in neonates. Overall, life stage and exposure pathway emerged as critical determinants of Cu-Cd mixture toxicity. This emphasizes the need of incorporating age-specific sensitivities and realistic multi-metal, multi-pathway exposures into freshwater risk assessment frameworks. |
Keywords: | age-specific sensitivities;exposure pathways;metal mixtures;oxidative stress;redox balance;toxicity | Document URI: | http://hdl.handle.net/1942/49985 | ISSN: | 1520-4081 | e-ISSN: | 1522-7278 | DOI: | 10.1002/tox.70127 | Rights: | This is an open access article under the terms of the Creative Commons Attribution-NonCommercial License, which permits use, distribution and reproduction in anymedium, provided the original work is properly cited and is not used for commercial purposes. 2026 The Author(s). Environmental Toxicology published by Wiley Periodicals LLC | Category: | A1 | Type: | Journal Contribution |
| Appears in Collections: | Research publications |
Files in This Item:
| File | Description | Size | Format | |
|---|---|---|---|---|
| Environmental Toxicology - 2026 - Majid - Influence of Age and Exposure Pathway on Copper and Cadmium Mixture Toxicity A.pdf | Early view | 5.99 MB | Adobe PDF | View/Open |
| Environmental Toxicology - 2026 - Majid - Influence of Age and Exposure Pathway on Copper and Cadmium Mixture Toxicity A.pdf | Early view | 5.99 MB | Adobe PDF | View/Open |
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