- Güven K., Özbay C., Ünlü E., Satar A. Acute Lethal Toxicity and Accumulation of Copper in Gammarus pulex (L.) (Amphipoda). Turkish Journal of Biology. 1999; 23(4): 513-522.
- Hedayati A., Hoseini S.M., Hoseinifar S.H. Response of plasma copper, ceruloplasmin, iron and ions in carp, Cyprinus carpio to waterborne copper ion and nanoparticle exposure. Comparative Biochemistry and Physiology Part C: Toxicology & Pharmacology. 2016; 179:87-93.
- Hoseini S.M., Rajabiesterabadi H., Kordrostami S. Chronic exposure of Rutilus rutilus caspicus fingerlings to ambient copper: Effects on food intake, growth performance, biochemistry and stress resistance. Toxicology and Industrial Health. 2016; 32(2): 375-383.
- Rajabiesterabadi H., Hoseini S.M., Fazelan Z., Hoseinifar S.H., Doan H.V. Effects of dietary turmeric administration on stress, immune, antioxidant and inflammatory responses of common carp (Cyprinus carpio) during copper exposure. Aquaculture Nutrition. 2020; 26(4): 1143-1153.
- Hoseini S.M., Khalili M., Rajabiesterabadi H., Hoseinifar S.H., Van Doan H. Effects of dietary monoterpene, myrcene, administration on immune-and health-related genes expression in common carp gill following exposure to copper sulfate. Fish & Shellfish Immunology. 2020; 98: 438-445.
- Hoseini S.M., Sinha R., Fazel A., Khosraviani K., Hosseinpour Delavar F., Arghideh M., Sedaghat M., Paolucci M., Hoseinifar S.H., Van Doan H. Histopathological damage and stress‐and immune‐related genes' expression in the intestine of common carp, Cyprinus carpio exposed to copper and polyvinyl chloride microparticle. Journal of Experimental Zoology Part A: Ecological and Integrative Physiology. 2022; 337(2): 181-190.
- Esmaili Sari A. Pollution, health and environmental standards. Tehran: Naghsh Mehr Publications. 2002
- Clarkson T.W. The toxicology of mercury. Critical reviews in clinical laboratory sciences. 1997; 34(4): 369-403.
- Bosch A.C., O'Neill B., Sigge G.O., Kerwath S.E., Hoffman L.C. Heavy metals in marine fish meat and consumer health: a review. Journal of the Science of Food and Agriculture. 2016; 96(1): 32-48.
- de Almeida Rodrigues P., Ferrari R.G., Dos Santos L.N., Junior C. A.C. Mercury in aquatic fauna contamination: a systematic review on its dynamics and potential health risks. Journal of Environmental Sciences. 2019; 84: 205-218.
- Briggs J.P. The zebrafish: a new model organism for integrative physiology. American Journal of Physiology-Regulatory, Integrative and Comparative Physiology. 2002; 282(1): R3-R9.
- Zhu F. A review on the application of herbal medicines in the disease control of aquatic animals. Aquaculture.2020; 526: 735422.
- Pu H., Li X., Du Q., Cui H., Xu Y. Research progress in the application of Chinese herbal medicines in aquaculture: a review. Engineering. 2017; 3(5), 731-737.
- Hoseini S.M., Yousefi M., Hoseinifar S.H., Van Doan H. Antioxidant, enzymatic and hematological responses of common carp (Cyprinus carpio) fed with myrcene-or menthol-supplemented diets and exposed to ambient ammonia. Aquaculture. 2019; 506, 246-255.
- Aanyu M., Betancor M.B., Monroig O. Effects of dietary limonene and thymol on the growth and nutritional physiology of Nile tilapia (Oreochromis niloticus). Aquaculture. 2018; 488: 217-226.
- Yousefi M., Hoseini S.M., Vatnikov Y.A., Karamyan A., Kulikov E.V. Dietary Thymol Supplementation Promotes Antioxidant Responses and Thermal Stress Resistance in Rainbow Trout, Oncorhynchus mykiss. Animals. 2024; 14(20): 2988.
- Yousefi M., Adineh H., Taheri Mirghaed A., Hoseini S.M. Co-Supplementation of Diet with Saccharomyces cerevisiae and Thymol: Effects on Growth Performance, Antioxidant and Immunological Responses of Rainbow Trout, Oncorhynchus mykiss. Animals. 2025; 15(3): 302.
- da Cunha J.A., Junior G.B., da Silva E.G., de Ávila Scheeren C., Fausto V.P., Salbego J., de Almeida Vaucher R., de Vargas A.C. Baldisserotto B. The survival and hepatic and muscle glucose and lactate levels of Rhamdia quelen inoculated with Aeromonas hydrophila and treated with terpinen-4-ol, carvacrol or thymol. Microbial Pathogenesis. 2019; 127: 220-224.
- Amer S.A., Metwally A.E., Ahmed S.A. The influence of dietary supplementation of cinnamaldehyde and thymol on the growth performance, immunity and antioxidant status of monosex Nile tilapia fingerlings (Oreochromis niloticus). The Egyptian Journal of Aquatic Research. 2018; 44(3): 251-256.
- Mazandarani M., Hoseini S.M. Menthol and 1, 8‐cineole as new anaesthetics in common carp, Cyprinus carpio (Linnaeus, 1758). Aquaculture Research. 2017; 48(6): 3041-3051.
- Yilmaz B.H., Yildiz H.Y. Anthelmintic effects of peppermint (Mentha piperita), lemon (Citrus limon), and tea tree (Melaleuca alternifolia) essential oils against Monogenean parasite (Dactylogyrus sp.) on carp (Cyprinus carpio). Helminthologia. 2023; 60(2):125.
- Dawood M.A., Metwally A.E.S., Elkomy A.H., Gewaily M.S., Abdo S.E., Abdel-Razek M.A., Soliman A.A., Amer A.A., Abdel-Razik N.I., Abdel-Latif H.M. Paray B.A. The impact of menthol essential oil against inflammation, immunosuppression, and histopathological alterations induced by chlorpyrifos in Nile tilapia. Fish & Shellfish Immunology. 2020; 102: 316-325.
- Rahmati-Holasoo H., Nassiri A., Soltani M., Shokrpoor S. Studying protective effects of thymol on the growth factors of juvenile common carp following chronic mercury (II) chloride exposure. Iranian Journal of Veterinary Medicine. 2025;19(1): 41-50
- Morselli M.B., Reis J.H., Baldissera M.D., Souza C.F., Baldisserotto B., Petrolli T.G., Paiano D., Lopes D.L., Da Silva A.S. Benefits of thymol supplementation on performance, the hepatic antioxidant system, and energetic metabolism in grass carp. Fish Physiology and Biochemistry. 2020; 46: 305-314.
- Rozza A.L., Beserra F.P., Vieira A.J., Oliveira de Souza E., Hussni C.A., Martinez E.R.M., Nóbrega R.H., Pellizzon C.H. The use of menthol in skin wound Healing-Anti-inflammatory potential, antioxidant defense system stimulation and increased epithelialization. Pharmaceutics. 2021; 13(11): 1902.
- de Almeida Rodrigues P., Ferrari R.G., Dos Santos L.N., Junior C.A.C. Mercury in aquatic fauna contamination: a systematic review on its dynamics and potential health risks. Journal of Environmental Sciences. 2019; 84: 205-218.
- Lateef, N.A. Toxicity of Anthracene on the function of the liver and kidney of the common carp Cyprinus carpio. Egyptian Journal of Aquatic Biology and Fisheries. 2021; 25(3): 831-840.
- Mieiro C.L., Pacheco M., Pereira M.E., Duarte A.C. Mercury distribution in key tissues of fish (Liza aurata) inhabiting a contaminated estuary-implications for human and ecosystem health risk assessment. Journal of Environmental Monitoring. 2009; 11(5): 1004-1012.
- Chen Q.L., Sun Y.L., Liu Z.H., Li Y.W. Sex-dependent effects of subacute mercuric chloride exposure on histology, antioxidant status and immune-related gene expression in the liver of adult zebrafish (Danio rerio). Chemosphere. 2017; 188: 1-9.
- Thoolen B., Maronpot R.R., Harada T., Nyska A., Rousseaux C., Nolte T., Malarkey D.E., Kaufmann, W., Küttler, K., Deschl U., Ward J.M. Proliferative and nonproliferative lesions of the rat and mouse hepatobiliary system. Toxicologic Pathology. 2010; 38(7_suppl), 5S-81S.
- Carmo N., Gringer C., Souza Neto J.B., França J.C., Victorino R., Pereira C.C.D.A. A importância da educação física escolar sobre aspectos de saúde: sedentarismo. Revista Educare CEUNSP.2013; 1(1), 21-29.
- Adams D.H., Sonne C., Basu N., Dietz R., Nam D.H., Leifsson P.S., Jensen A. L. Mercury contamination in spotted seatrout, Cynoscion nebulosus: an assessment of liver, kidney, blood, and nervous system health. Science of the Total Environment. 2010; 408(23), 5808-5816.
- Kaewamatawong T., Rattanapinyopituk K., Ponpornpisit A., Pirarat N., Ruangwises S., Rungsipipat A. Short-term exposure of Nile Tilapia (Oreochromis niloticus) to mercury: histopathological changes, mercury bioaccumulation, and protective role of metallothioneins in different exposure routes. Toxicologic Pathology. 2013; 41(3), 470-479.
- Closa D., Folch‐Puy E. Oxygen free radicals and the systemic inflammatory response. IUBMB life.2004; 56(4): 185-191.
- Zhang Q.F., Li Y.W., Liu Z.H., Chen Q.L. Exposure to mercuric chloride induces developmental damage, oxidative stress and immunotoxicity in zebrafish embryos-larvae. Aquatic Toxicology. 2016; 181: 76-85.
- Abou-Zeid S.M., Zheng C., Khalil S.R., Farag M.R., Elsabbagh H.S., Siddique M.S., Mawed S.A., Azzam M.M., Di Cerbo A. and Elkhadrawey B.A., Thymol-enriched diet alleviates the toxic impacts of zinc oxide nanoparticles on growth performance, blood biochemistry, oxidant/antioxidant status and stress-related genes and histology of liver and gills in Oreochromis niloticus. Aquaculture Reports. 2023; 33: 101750.
- El Euony O.I., Elblehi S.S., Abdel-Latif H.M., Abdel-Daim M.M., El-Sayed Y.S. Modulatory role of dietary Thymus vulgaris essential oil and Bacillus subtilis against thiamethoxam-induced hepatorenal damage, oxidative stress, and immunotoxicity in African catfish (Clarias garipenus). Environmental Science and Pollution Research.2020; 27: 23108-23128.
- Krishnan M., Kim D.K., Kim S.G., Kang S.C. Thymol exposure mediates pro-oxidant shift by regulating Nrf2 and apoptotic events in zebrafish (Danio rerio) embryos. Environmental Toxicology and Pharmacology. 2019; 65:1-8.
- Rocha C.A., Félix, L.M., Monteiro S.M., Venâncio C. Antinociceptive analysis of natural monoterpenes eugenol, menthol, carvacrol and thymol in a zebrafish larval model. Pharmaceuticals. 2024; 17(4): 457.
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