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Oxytetracycline-induced inflammatory process without oxidative stress in blue mussels Mytilus trossulus
Anna Hallmann1, Dagmara Leszczyńska1, Aleksandra Czumaj1
1Department of Pharmaceutical Biochemistry, Medical University of Gdańsk, Gdańsk, Poland.
Abstract:
Potentially harmful compounds including pharmaceuticals are commonly found in marine waters and sediments. Amongst those, antibiotics and their metabolites are detected worldwide in various abiotic (at concentrations as high as µg/L) and biotic matrices at ng/gram of tissue, posing a risk to non-target species exposed to them such as blue mussels. Amongst those, oxytetracycline (OTC) belongs to the most detected antibiotics in the marine environment. In this work, we concentrated on studying the potential induction of oxidative stress, activation of cellular detoxification processes (including Phase I and Phase II xenobiotic biotransformation enzymes) and multixenobiotic resistance pumps (Phase III) as well as changes in the aromatisation efficiency in Mytilus trossulus exposed to 100 μg/L OTC. Our results show that 100 µg/L OTC concentration did not provoke cellular oxidative stress and did not affect the expression of genes involved in detoxification processes in our model. Moreover, no effect of OTC on aromatisation efficiency was found. Instead, phenoloxidase activity measured in haemolymph was significantly higher in OTC exposed mussels than in those from the control (30.95 ± 3.33 U/L and 17.95 ± 2.75 U/L, respectively). OTC exposed mussels were also characterised by a tissue-dependant activation of major vault protein (MVP) gene expression (1.5 times higher in gills and 2.4 times higher in the digestive system) and a decreased expression of the nuclear factor kappa B-a (NF-κB) gene (3.4 times lower in the digestive system) when compared to those from the control. Additionally, an elevated number of regressive changes and inflammatory responses in tissues such as gills, digestive system and mantle (gonads) was observed underlining the worsening of bivalves' general health. Therefore, instead of a free-radical effect of OTC, we for the first time describe the occurrence of typical changes resulting from antibiotic therapy in non-target organisms like M. trossulus exposed to antibiotics such as OTC.
Insights
Oxytetracycline (OTC) exposure in blue mussels did not cause oxidative stress but increased phenoloxidase activity and altered gene expression. This indicates antibiotic therapy effects, not free-radical damage, in non-target marine organisms.
Area of Science:
- Environmental toxicology
- Marine biology
- Ecotoxicology
Background:
- Pharmaceuticals, including antibiotics like oxytetracycline (OTC), are prevalent in marine environments.
- These compounds pose risks to non-target marine organisms, such as blue mussels (Mytilus trossulus).
- Understanding the physiological impacts of OTC on marine invertebrates is crucial for assessing environmental risk.
Purpose of the Study:
- To investigate the effects of 100 µg/L oxytetracycline (OTC) on Mytilus trossulus.
- To assess potential induction of oxidative stress, cellular detoxification, and multixenobiotic resistance.
- To examine changes in aromatase efficiency and overall bivalve health.
Main Methods:
- Exposure of Mytilus trossulus to 100 µg/L oxytetracycline (OTC).
- Measurement of phenoloxidase activity in hemolymph.
- Gene expression analysis for major vault protein (MVP) and nuclear factor kappa B-a (NF-κB).
- Histopathological examination of gills, digestive system, and mantle.
Main Results:
- OTC exposure did not induce oxidative stress or affect detoxification gene expression.
- Phenoloxidase activity significantly increased in OTC-exposed mussels.
- OTC exposure led to tissue-dependent upregulation of MVP and downregulation of NF-κB.
- Histopathology revealed regressive and inflammatory changes in multiple tissues.
Conclusions:
- Oxytetracycline (OTC) exposure in Mytilus trossulus elicits a response distinct from oxidative stress.
- Observed changes suggest a typical antibiotic therapy effect in non-target marine organisms.
- The study highlights the need for further research into the sublethal impacts of antibiotics on marine ecosystems.
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