Anesthetic Driven Hematological Dynamics in Farmed Fish: What Do We Know?
Abstract
1. Introduction
2. Review Methodology
3. Pharmacological Classes of Anesthetics in Aquaculture
3.1. Amine Derivatives (MS-222, Benzocaine, Lidocaine)
3.2. Phenolic Compounds (Eugenol, Isoeugenol)
3.3. Glycol Ether Compounds (Phenoxyethanol)
3.4. Imidazole Derivatives (Etomidate and Metomidate)
3.5. Quinolone Derivatives (Quinaldine)
3.6. Benzodiazepine Derivatives (Diazepam)
3.7. Essential Oil Extracts and Other Plant Extracts
3.8. Nanoformulations
4. Blood Pharmacokinetics of Anesthetic Uptake
5. Hematological Alterations Induced by Aquaculture Anesthetics
6. Hemato-Biochemical Responses to Anesthetic Exposure in Fish
7. Blood Gas Physiology During Anesthesia in Fish
7.1. Respiratory Degression and Hypoxemia
7.2. Hypercapnia and Carbon Dioxide Retention
7.3. Acid–Base Disturbances
7.4. Blood Oxygen Transport During Anesthesia
7.5. Recovery Physiology and Species-Environmental Modifiers
8. Immunohematological Changes
9. Repeated Anesthesia and Chronic Exposure
10. Shellfish Hemolymph Responses
11. Emerging Technologies for Physiological Monitoring During Anesthesia
12. Research Gaps
13. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Minaz, M.; Félix, L. Trends and advancements in fish anesthesia over the last decade. Aquaculture 2025, 612, 743147. [Google Scholar]
- Fayaz, I.; Qadiri, S.S.N.; Shah, F.A.; Dar, S.A.; Amin, A.; Mukhtar, K.; Mandu, S.M.; Wali, A. Anesthetics in aquaculture: Comprehensive insights into agents, mechanisms, and applications. Fish Physiol. Biochem. 2026, 52, 16. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Food and Agriculture Organization of the United Nations (FAO). The State of World Fisheries and Aquaculture 2024: Blue Transformation in Action; FAO: Rome, Italy, 2024. [Google Scholar] [CrossRef] [Scilit]
- Chen, H.; Luo, D. Application of haematology parameters for health management in fish farms. Rev. Aquac. 2023, 15, 704–737. [Google Scholar]
- Habib, S.S.; Naz, S.; Batool, A.I.; Rehman, F.U.; Ullah, M.; Kesbiç, O.S.; Maricchiolo, G.; Fazio, F. Effect of different Anesthetics on hematology and blood biochemistry of Labeo rohita. Aquac. Stud. 2023, 24, 1–10. [Google Scholar] [CrossRef] [Scilit]
- Leyden, C.; Brüggemann, T.; Debinski, F.; Simacek, C.A.; Dehmelt, F.A.; Arrenberg, A.B. Efficacy of Tricaine (MS-222) and Hypothermia as Anesthetic Agents for Blocking Sensorimotor Responses in Larval Zebrafish. Front. Vet. Sci. 2022, 9, 864573. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Attili, S.; Hughes, S.M. Anesthetic tricaine acts preferentially on neural voltage-gated sodium channels and fails to block directly evoked muscle contraction. PLoS ONE 2014, 9, e103751. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Topic Popovic, N.; Strunjak-Perovic, I.; Coz-Rakovac, R.; Barisic, J.; Jadan, M.; Persin Berakovic, A.; Sauerborn Klobucar, R. Tricaine methane-sulfonate (MS-222) application in fish anesthesia. J. Appl. Ichthyol. 2012, 28, 553–564. [Google Scholar] [CrossRef] [Scilit]
- Hsu, J.C.N.; Rairat, T.; Lu, Y.P.; Chou, C.C. The use of tricaine methanesulfonate (MS-222) in Asian seabass (Lates calcarifer) at different temperatures: Study of optimal doses, minimum effective concentration, blood biochemistry, immersion pharmacokinetics, and tissue distributions. Vet. Sci. 2023, 10, 539. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Perrot-Minnot, M.J.; Balourdet, A.; Musset, O. Optimization of anesthetic procedure in crustaceans: Evidence for sedative and analgesic-like effect of MS-222 using a semi-automated device for exposure to noxious stimulus. Aquat. Toxicol. 2021, 240, 105981. [Google Scholar] [PubMed]
- Liu, Y.; Zhou, X.W.; Ding, H.T.; Dong, X.J.; Zhang, J.J.; Zheng, Y.C.; Chen, X.N.; Cheng, H.L.; Ding, Z.J.; Xu, J.H. Effects of tricaine methanesulfonate (MS-222) on sedation and responses of yellow catfish (Pelteobagrus fulvidraco) subjected to simulated transportation stress. Aquaculture 2022, 549, 737789. [Google Scholar] [CrossRef] [Scilit]
- de Souza, A.D.S.L.; Gimbo, R.Y.; da Fonseca, S.M.; de Souza, R.A.L.; Barbas, L.A.L.; Hamoy, M.; Almeida, D.V. Electromyography and oculomotricity as markers of benzocaine anesthesia in juvenile tambaqui (Colossoma macropomum). Aquaculture 2025, 595, 741565. [Google Scholar]
- Vieira, L.R.; Pereira, Y.L.G.; Diniz, L.A.; Nascimento, C.P.; Silva, A.L.M.; Azevedo, J.E.C.; de Mello, V.J.; Muto, N.A.; Barbas, L.A.L.; Hamoy, M. Graded concentrations of lidocaine hydrochloride in the modulation of behavioral, cardiac, and muscular responses of the Amazon freshwater fish tambaqui (Colossoma macropomum). Aquaculture 2023, 563, 738985. [Google Scholar] [CrossRef] [Scilit]
- Kheawfu, K.; Pikulkaew, S.; Wellendorph, P.; Jørgensen, L.V.G.; Rades, T.; Müllertz, A.; Okonogi, S. Elucidating pathway and anesthetic mechanism of action of clove oil nanoformulations in fish. Pharmaceutics 2022, 14, 919. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Nuanmanee, S.; Sriwanayos, P.; Boonyo, K.; Chaisri, W.; Saengsitthisak, B.; Tajai, P.; Pikulkaew, S. Synergistic effect between eugenol and 1,8-cineole on anesthesia in guppy fish (Poecilia reticulata). Vet. Sci. 2024, 11, 165. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Lehotzky, D.; Eske, A.I.; Zupanc, G.K. The effect of eugenol anesthesia on the electric organ discharge of the weakly electric fish Apteronotus leptorhynchus. Fish Physiol. Biochem. 2023, 49, 1321–1338. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zeng, X.; Zheng, X.; Wu, J.; Dong, H.; Zhang, J. Assessment of the molecular mechanism in fish using eugenol as anesthesia based on network pharmacology. Fish Physiol. Biochem. 2024, 50, 2191–2205. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Machnik, P.; Biazar, N.; Schuster, S. Recordings in an integrating central neuron reveal the mode of action of isoeugenol. Commun. Biol. 2023, 6, 309. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Jia, B.Z.; Rui, X.Y.; Wang, Y.; Zeng, X.; Sheng, S.J.; Zeng, B.J.; Xu, Z.L.; Luo, L. Fishery anesthetics in aquaculture products: Safety concerns and analytical methods. Foods 2025, 14, 3928. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Jiang, L.; Tang, J.; Huang, B.; Zhang, C.; Jiang, P.; Chen, D. Effect of vanillin on the anesthesia of crucian carp: Effects on physiological and biochemical indices, pathology, and volatile aroma components. Foods 2023, 12, 1614. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Barbas, L.A.L.; Torres, M.F.; da Costa, B.M.P.; Feitosa, M.J.M.; Maltez, L.C.; Amado, L.L.; Toda, Y.P.S.; dos Santos Batista, P.; Cabral, D.A.C.; Hamoy, M. Eugenol induces body immobilization yet evoking an increased neuronal excitability in fish during short-term baths. Aquat. Toxicol. 2021, 231, 105734. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Jiang, L.; Huang, B.; Tang, J.; Jiang, P.; Chen, D.; Zhang, C. Comprehensive analysis of physiological, biochemical and flavor characteristics changes in crucian carp (Carassius auratus) under different concentrations of eugenol. Foods 2023, 12, 2820. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Adel, M.; Shekarabi, S.P.H.; Gomułka, P.; Amiri, A.B.; Multisanti, C.R.; Faggio, C. Short-term anesthesia with clove oil and propofol: Physiological responses in Persian sturgeon (Acipenser persicus). Fishes 2025, 10, 286. [Google Scholar] [CrossRef] [Scilit]
- Bagheri, S.; Gholamhosseini, A.; Yaghoobpour, T.; Adel, M. Uses of eugenol in aquaculture: Benefits and applications—A review. Ann. Anim. Sci. 2025, 25, 945–953. [Google Scholar] [CrossRef] [Scilit]
- Pattanasiri, T.; Taparhudee, W.; Suppakul, P. Acute toxicity and Anesthetic effect of clove oil and eugenol on Siamese fighting fish, Betta splendens. Aquac. Int. 2017, 25, 163–175. [Google Scholar]
- Martino, J.C.; Suthers, I.M.; Nguyen, J.; Hewitt, D.E.; Evans, S.M.; Schilling, H.T. Anesthetic performance of AQUI-S and 2-phenoxyethanol in fish for field applications. Rev. Fish Biol. Fish. 2026, 36, 45. [Google Scholar] [CrossRef] [Scilit]
- Lambooij, B.; Pilarczyk, M.; Bialowas, H.; Reimert, H.; Andre, G.; Van De Vis, H. Anesthetic properties of Propiscin (Etomidate) and 2-phenoxyethanol in the common carp (Cyprinus carpio L.), neural and behavioural measures. Aquac. Res. 2009, 40, 1328–1333. [Google Scholar] [CrossRef] [Scilit]
- Pounder, K.C.; Mitchell, J.L.; Thomson, J.S.; Pottinger, T.G.; Sneddon, L.U. Physiological and behavioural evaluation of common anesthesia practices in the rainbow trout. Appl. Anim. Behav. Sci. 2018, 199, 94–102. [Google Scholar] [CrossRef] [Scilit]
- Rairat, T.; Chi, Y.; Hsieh, C.Y.; Liu, Y.K.; Chuchird, N.; Chou, C.C. Determination of optimal doses and minimum effective concentrations of tricaine methanesulfonate, 2-phenoxyethanol and eugenol for laboratory managements in Nile tilapia (Oreochromis niloticus). Animals 2021, 11, 1521. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Akgül, E.; Can, E. The anesthetic effects of 2-phenoxyethanol on Munzur trout fingerlings (Salmo munzuricus Turan et al., 2017) at different temperatures. Iran. J. Fish. Sci. 2020, 19, 195–203. [Google Scholar]
- Mylonas, C.C.; Cardinaletti, G.; Sigelaki, I.; Polzonetti-Magni, A. Comparative efficacy of clove oil and 2-phenoxyethanol as anesthetics in the aquaculture of European sea bass (Dicentrarchus labrax) and gilthead sea bream (Sparus aurata) at different temperatures. Aquaculture 2005, 246, 467–481. [Google Scholar] [CrossRef] [Scilit]
- Watanabe, K.I.; Takahashi, M.; Nakagawa, M.; Ohta, K.; Satoh, J.; Hotta, T. Effectiveness of 2-phenoxyethanol anesthesia of fish cultured in Japan. Aquac. Sci. 2006, 54, 255–263. [Google Scholar]
- Akbary, P.; Pirbeigi, A.; Jahanbakhshi, A. Analysis of primary and secondary stress responses in bighead carp (Hypophthalmichthys nobilis) by anesthetization with 2-phenoxyethanol. Int. J. Environ. Sci. Technol. 2016, 13, 1009–1016. [Google Scholar] [CrossRef] [Scilit]
- Shaluei, F.; Hedayati, A.; Jahanbakhshi, A.; Baghfalaki, M. Physiological responses of great sturgeon (Huso huso) to different concentrations of 2-phenoxyethanol as an anesthetic. Fish Physiol. Biochem. 2012, 38, 1627–1634. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Priborsky, J.; Velisek, J. A review of three commonly used fish anesthetics. Rev. Fish. Sci. Aquac. 2018, 26, 417–442. [Google Scholar] [CrossRef] [Scilit]
- Reis, T.D.S.; Araújo, D.B.D.; Paz, C.A.D.; Santos, R.G.; Barbosa, A.D.S.; Souza, L.V.D.; Deiga, Y.D.S.; Garcia, V.L.D.O.; Barbosa, G.B.; Rocha, L.L.D.; et al. Etomidate as an anesthetic in Colossoma macropomum: Behavioral and electrophysiological data complement each other as a tool to assess anesthetic safety. PLoS ONE 2024, 19, e0305093. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Tang, Y.; Xu, L.; Zhao, J.; Qian, X.; Qiang, H.; Xiang, P.; Yan, H. Metabolic profile of etomidate and its three analogs in zebrafish, human liver microsomes, human urine and hair samples using UHPLC-Q Exactive Orbitrap-HRMS. Drug Test. Anal. 2025, 17, 1662–1674. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Valk, B.I.; Struys, M.M. Etomidate and its analogs: A review of pharmacokinetics and pharmacodynamics. Clin. Pharmacokinet. 2021, 60, 1253–1269. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Small, B.C. Anesthetic efficacy of metomidate and comparison of plasma cortisol responses to tricaine methanesulfonate, quinaldine and clove oil anesthetized channel catfish Ictalurus punctatus. Aquaculture 2003, 218, 177–185. [Google Scholar] [CrossRef] [Scilit]
- Hansen, M.K.; Nymoen, U.; Horsberg, T.E. Pharmacokinetic and pharmacodynamic properties of metomidate in turbot (Scophthalmus maximus) and halibut (Hippoglossus hippoglossus). J. Vet. Pharmacol. Ther. 2003, 26, 95–103. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Ahad, N.; Dar, S.A.; Shah, F.A.; Dar, R.A.; Mukhtar, K.; Mandu, S.M.; Wali, A.; Asimi, O.A.; Bhat, B.A. Evaluation of quinaldine anesthesia in common carp (Cyprinus carpio): Induction, recovery, and physiological responses. Aquat. Toxicol. 2025, 286, 107437. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Mohamed, S.J. Comparative efficacy of four anesthetics on common carp Cyprinus carpio L. Acta Ichthyol. Piscat. 1999, 29, 91–97. [Google Scholar] [CrossRef] [Scilit]
- Dimitriadou, S.; Miller, M.; Pilehvar, A.; Sneddon, L.U.; Bamsey, J.L.; Hogan-Bassey, D.; Trznadel, M.; Ball, J.S.; Takesono, A.; Hillman, C.; et al. Evaluating anaesthetics for improving scientific research and welfare using larval zebrafish. bioRxiv 2025. [Google Scholar] [CrossRef] [Scilit]
- Yanar, M.; Kumlu, M. The Anesthetics effects of quinaldine sulphate and/or diazepam on sea bass (Dicentrarchus labrax) juveniles. Turk. J. Vet. Anim. Sci. 2001, 25, 185–189. [Google Scholar]
- Yanar, M.; Genç, E. Anesthetic effects of quinaldine sulphate together with the use of diazepam on Oreochromis niloticus L. 1758 (Cichlidae) at different temperatures. Turk. J. Vet. Anim. Sci. 2004, 28, 1001–1005. [Google Scholar]
- Huerta, B.; Margiotta-Casaluci, L.; Rodríguez-Mozaz, S.; Scholze, M.; Winter, M.J.; Barceló, D.; Sumpter, J.P. Anti-anxiety drugs and fish behavior: Establishing the link between internal concentrations of oxazepam and behavioral effects. Environ. Toxicol. Chem. 2016, 35, 2782–2790. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Bencan, Z.; Sledge, D.; Levin, E.D. Buspirone, chlordiazepoxide and diazepam effects in a zebrafish model of anxiety. Pharmacol. Biochem. Behav. 2009, 94, 75–80. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Devyashin, A.S.; Blazhenko, A.A.; Lebedev, V.A.; Lebedev, A.A.; Bychkov, E.R.; Shabanov, P.D. Assessment of dose-dependent effects of anxiolytics of benzodiazepine structure with diazepam as an example in Danio rerio. Rev. Clin. Pharmacol. Drug Ther. 2020, 18, 43–49. [Google Scholar] [CrossRef] [Scilit]
- Abreu, M.S.D.; Koakoski, G.; Ferreira, D.; Oliveira, T.A.; Rosa, J.G.S.D.; Gusso, D.; Giacomini, A.C.V.; Piato, A.L.; Barcellos, L.J.G. Diazepam and fluoxetine decrease the stress response in zebrafish. PLoS ONE 2014, 9, e103232. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Hu, Y.; Hou, W.; Zhang, Y.; Zhu, H. Bioconcentration, biotransformation, oxidative stress and neurochemical response of environmental concentration diazepam in yellowbelly pufferfish. Aquat. Toxicol. 2025, 289, 107620. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Yang, Z.; Xu, X.; Li, Y.; Hu, X.; Xu, J.; Qiao, L.; Sun, H.; Mu, Y. Bioaccumulation and elimination, and risk assessment of diazepam in carp (Cyprinus carpio). Bull. Environ. Contam. Toxicol. 2026, 116, 71. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Cui, J.; Wang, J.; Zhong, S.; Hong, M.; Lu, C.; Fang, J.; Jiang, H. Study on the residual dynamics of diazepam in freshwater fish of Zhejiang, China and its implications for human health. Environ. Pollut. 2025, 384, 127038. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Han, S.; Seong, M.; Kim, G.; Jeong, D.; Lim, S.; Park, Y. Diazepam exerts immunosuppressive effects on macrophages isolated from the head kidney of catfish (Silurus asotus). Fish Shellfish Immunol. 2025, 169, 111055. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Heldwein, C.G.; Silva, L.L.; Reckziegel, P.; Barros, F.M.C.; Bürger, M.E.; Baldisserotto, B.; Mallmann, C.A.; Schmidt, D.; Caron, B.O.; Heinzmann, B.M. Participation of the GABAergic system in the anesthetic effect of Lippia alba (Mill.) NE Brown essential oil. Braz. J. Med. Biol. Res. 2012, 45, 436–443. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Dos Santos, A.C.; Junior, G.B.; Zago, D.C.; Zeppenfeld, C.C.; da Silva, D.T.; Heinzmann, B.M.; Baldisserotto, B.; da Cunha, M.A. Anesthesia and anesthetic action mechanism of essential oils of Aloysia triphylla and Cymbopogon flexuosus in silver catfish (Rhamdia quelen). Vet. Anaesth. Analg. 2017, 44, 106–113. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Visoni, B.M.; de Melo, T.P.; Descovi, S.N.; Heinzmann, B.M.; Baldisserotto, B. Essential oils and their use as anesthetics and sedatives for Nile tilapia (Oreochromis niloticus): A systematic review. Fishes 2025, 11, 19. [Google Scholar] [CrossRef] [Scilit]
- Felix, L.; Vieira, R.; Monteiro, S.M.; Venancio, C. A meta-analytic review of monoterpene for fish anesthesia. Fish Fish. 2023, 24, 367–380. [Google Scholar]
- Souza, C.D.F.; Baldissera, M.D.; Baldisserotto, B.; Heinzmann, B.M.; Martos-Sitcha, J.A.; Mancera, J.M. Essential oils as stress-reducing agents for fish aquaculture: A review. Front. Physiol. 2019, 10, 785. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kheawfu, K.; Chittasupho, C.; Pikulkaew, S.; Chaisri, W.; Junmahasathien, T. Comparative stability and anesthetic evaluation of Holy Basil essential oil formulated in SNEDDS and microemulsion systems in Cyprinus carpio var. Koi. Pharmaceutics 2025, 17, 997. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Fortes, C.H.M.; Ferrari, F.T.; Baldisserotto, B.; Schmidt, D.; Sutili, F.J.; Heiznmann, B.M. Anesthetic potential of essential oils from Brazilian native plants in Rhamdia quelen juveniles (silver catfish). Neotrop. Ichthyol. 2024, 22, e240034. [Google Scholar] [CrossRef] [Scilit]
- Bodur, T.; Oktavia, I.S.; Sulmartiwi, L. Effective concentration of herbal Anesthetics Origanum vulgare L. oil and its effects on stress parameters in Nile tilapia (Oreochromis niloticus). Vet. Med. Sci. 2024, 10, e1492. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Bodur, T.; León-Bernabeu, S.; Navarro, A.; Tort, L.; Afonso, J.M.; Montero, D. Effects of new plant based anesthetics Origanum sp. and Eucalyptus sp. oils on stress and welfare parameters in Dicentrarchus labrax and their comparison with clove oil. Aquaculture 2018, 495, 402–408. [Google Scholar] [CrossRef] [Scilit]
- Zeng, X.; Dong, H.; Wu, J.; Wang, W.; Duan, Y.; Chen, J.; Zhang, J. Essential oil of Magnolia denudata is an effective anesthetic for spotted seabass (Lateolabrax maculatus): A test of its effect on blood biochemistry, physiology, and gill morphology. Fish Physiol. Biochem. 2022, 48, 1349–1363. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Minaz, M. A new herbal anesthetic agent for common carp (Cyprinus carpio) sedation and anesthesia: Nutmeg (Myristica fragrans) essential oil. Front. Vet. Sci. 2024, 11, 1477357. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Khumpirapang, N.; von Gersdorff Jørgensen, L.; Müllertz, A.; Rades, T.; Okonogi, S. Formulation optimization, anesthetic activity, skin permeation, and transportation pathway of Alpinia galanga oil SNEDDS in zebrafish (Danio rerio). Eur. J. Pharm. Biopharm. 2021, 165, 193–202. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Charlie-Silva, I.; Feitosa, N.M.; Gomes, J.M.M.; Hoyos, D.C.D.M.; Mattioli, C.C.; Eto, S.F.; Fernandes, D.C.; Belo, M.A.D.A.; Silva, J.D.O.; Barros, A.L.B.D.; et al. Potential of mucoadhesive nanocapsules in drug release and toxicology in zebrafish. PLoS ONE 2020, 15, e0238823. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Rodrigues, P.; Ferrari, F.T.; Barbosa, L.B.; Righi, A.; Laporta, L.; Garlet, Q.I.; Baldisserotto, B.; Heinzmann, B.M. Nanoemulsion boosts anesthetic activity and reduces the side effects of Nectandra grandiflora Nees essential oil in fish. Aquaculture 2021, 545, 737146. [Google Scholar] [CrossRef] [Scilit]
- Kanani, H.; Hooshmand, P.; Harsij, M.; Gholamalipour Alamdari, E. Applying new formulated herbal anesthetic comparing to tricaine methanesulfonate (MS-222) in beluga (Huso huso). Sustain. Aquac. Health Manag. J. 2018, 4, 109–123. [Google Scholar] [CrossRef] [Scilit]
- Oda, A.; Messenger, K.M.; Carbajal, L.; Posner, L.P.; Gardner, B.R.; Hammer, S.H.; Cerreta, A.J.; Lewbart, G.A.; Bailey, K.M. Pharmacokinetics and pharmacodynamic effects in koi carp (Cyprinus carpio) following immersion in propofol. Vet. Anaesth. Analg. 2018, 45, 529–538. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Xu, Y.; Jiao, Y.; Yang, J.; Tan, A.; Ou, D.; Song, X.; Lv, S. The pharmacokinetic and residue depletion study of eugenol in carp (Cyprinus carpio). Front. Vet. Sci. 2023, 9, 1097812. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Ventura, A.S.; de Castro Silva, T.S.; Zanon, R.B.; Inoue, L.A.K.A.; Cardoso, C.A.L. Physiological and pharmacokinetic responses in neotropical Piaractus mesopotamicus to the essential oil from Lippia sidoides (Verbenaceae) as an anesthetic. Int. Aquat. Res. 2019, 11, 1–12. [Google Scholar] [CrossRef] [Scilit]
- Farias, C.F.S.; Ventura, A.S.; Jerônimo, G.T.; Cardoso, C.A.L.; de Matos, L.V.; da Silva, G.S.; Gonçalves, L.U.; Povh, J.A.; Martins, M.L. Pharmacokinetics and metabolism of basil (Ocimum basilicum) essential oil as an anesthetic for tambaqui (Colossoma macropomum). Aquac. Int. 2024, 32, 2923–2938. [Google Scholar]
- Kiessling, A.; Johansson, D.; Zahl, I.H.; Samuelsen, O.B. Pharmacokinetics, plasma cortisol and effectiveness of benzocaine, MS-222 and isoeugenol measured in individual dorsal aorta-cannulated Atlantic salmon (Salmo salar) following bath administration. Aquaculture 2009, 286, 301–308. [Google Scholar] [CrossRef] [Scilit]
- Meinertz, J.R.; Greseth, S.L.; Schreier, T.M.; Bernardy, J.A.; Gingerich, W.H. Isoeugenol concentrations in rainbow trout (Oncorhynchus mykiss) skin-on fillet tissue after exposure to AQUI-STM at different temperatures, durations, and concentrations. Aquaculture 2006, 254, 347–354. [Google Scholar] [CrossRef] [Scilit]
- Iversen, M.; Finstad, B.; McKinley, R.S.; Eliassen, R.A. The efficacy of metomidate, clove oil, Aqui-STM and Benzoak® as Anesthetics in Atlantic salmon (Salmo salar L.) smolts, and their potential stress-reducing capacity. Aquaculture 2003, 221, 549–566. [Google Scholar] [CrossRef] [Scilit]
- Rairat, T.; Chi, Y.; Chang, S.K.; Hsieh, C.Y.; Chuchird, N.; Chou, C.C. Differential effects of aquatic Anesthetics on the pharmacokinetics of antibiotics: Examples using florfenicol in Nile tilapia (Oreochromis niloticus). J. Fish Dis. 2021, 44, 1579–1586. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Treves-Brown, K.M. Anesthetics. In Applied Fish Pharmacology; Springer: Dordrecht, The Netherlands, 2000; pp. 206–219. [Google Scholar]
- Duman, S. The effect of anesthetic (2-phenoxyethanol) application on some biochemical and hematological parameters in Russian sturgeon (Acipenser gueldenstaedtii) and Siberian sturgeon (Acipenser baerii) during transport. Turk. J. Vet. Anim. Sci. 2019, 43, 825–833. [Google Scholar] [CrossRef] [Scilit]
- Weinert, N.C.; Volpato, J.; Costa, Á.; Antunes, R.R.; de Oliveira, A.C.; Mattoso, C.R.S.; Saito, M.E. Hematology of Nile tilapia (Oreochromis niloticus) subjected to anesthesia and anticoagulation protocols. Semin. Ciênc. Agrár. 2015, 36, 4237–4250. [Google Scholar] [CrossRef] [Scilit]
- Mirghaed, T.A.; Ghelichpour, M.; Zargari, A.; Yousefi, M. Anesthetic efficacy and biochemical effects of 1,8-cineole in rainbow trout (Oncorhynchus mykiss, Walbaum, 1792). Aquac. Res. 2018, 49, 2156–2165. [Google Scholar] [CrossRef] [Scilit]
- Mirghaed, T.A.; Hoseini, S.M.; Aydın, B.; Paolucci, M.; Hoseinifar, S.H.; Van Doan, H. Effects of anesthesia with 1,8-cineole on haematological and plasma stress responses in Caspian trout, Salmo caspius, subadults. Aquac. Res. 2022, 53, 893–900. [Google Scholar]
- Hoseini, S.M.; Taheri Mirghaed, A.; Pagheh, E.; Hoseinifar, S.H.; Van Doan, H. Anesthesia of rainbow trout with citronellal: Efficacy and biochemical effects. J. Exp. Zool. Part A Ecol. Integr. Physiol. 2022, 337, 227–237. [Google Scholar]
- dos Santos, P.C.; Lopes, E.M.; Ventura, A.S.; Cardoso, C.A.L.; da Silva, A.V.; Costa, D.S.; Tedesco, M.; Jerônimo, G.T.; Martins, M.L. Temperature-induced changes in the hematological and biochemical parameters of Nile tilapia anesthetized with Ocimum basilicum. Aquac. Int. 2025, 33, 8. [Google Scholar]
- Witeska, M.; Dudyk, J.; Jarkiewicz, N. Haematological effects of 2-phenoxyethanol and etomidate in carp (Cyprinus carpio L.). Vet. Anaesth. Analg. 2015, 42, 537–546. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Witeska, M.; Teodorczuk, B.; Lugowska, K. Hematological effects of etomidate and tricaine in common carp. Turk. J. Vet. Anim. Sci. 2017, 41, 93–98. [Google Scholar] [CrossRef] [Scilit]
- Gonçalves, A.T.; Llanos-Rivera, A.; Ruano, M.; Avello, V.; Gallardo-Rodriguez, J.J.; Astuya-Villalón, A. Physiological response of Atlantic salmon (Salmo salar) to long-term exposure to an anesthetic obtained from Heterosigma akashiwo. Toxins 2022, 14, 575. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- de Freitas Souza, C.; Descovi, S.; Baldissera, M.D.; Bertolin, K.; Bianchini, A.E.; Mourão, R.H.V.; Schmidt, D.; Heinzmann, B.M.; Antoniazzi, A.; Baldisserotto, B.; et al. Involvement of HPI-axis in anesthesia with Lippia alba essential oil citral and linalool chemotypes: Gene expression in the secondary responses in silver catfish. Fish Physiol. Biochem. 2019, 45, 155–166. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zahl, I.H.; Samuelsen, O.; Kiessling, A. Anesthesia of farmed fish: Implications for welfare. Fish Physiol. Biochem. 2012, 38, 201–218. [Google Scholar] [PubMed]
- Toni, C.; Becker, A.G.; Simões, L.N.; Pinheiro, C.G.; de Lima Silva, L.; Heinzmann, B.M.; Caron, B.O.; Baldisserotto, B. Fish anesthesia: Effects of the essential oils of Hesperozygis ringens and Lippia alba on the biochemistry and physiology of silver catfish (Rhamdia quelen). Fish Physiol. Biochem. 2014, 40, 701–714. [Google Scholar] [PubMed]
- Yousefi, M.; Hoseinifar, S.H.; Ghelichpour, M.; Hoseini, S.M. Anesthetic efficacy and biochemical effects of citronellal and linalool in common carp (Cyprinus carpio Linnaeus, 1758) juveniles. Aquaculture 2018, 493, 107–112. [Google Scholar] [CrossRef] [Scilit]
- Jerez-Cepa, I.; Fernández-Castro, M.; Del Santo O’Neill, T.J.; Martos-Sitcha, J.A.; Martínez-Rodríguez, G.; Mancera, J.M.; Ruiz-Jarabo, I. Transport and recovery of gilthead seabream (Sparus aurata L.) sedated with clove oil and MS-222: Effects on stress axis regulation and intermediary metabolism. Front. Physiol. 2019, 10, 612. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Wang, T.; Wang, Y.; Liu, X.; Gao, X.; Hu, K. Combined transcriptomics and metabolomics analyses in grass carp under anesthetic stress. Front. Cell. Infect. Microbiol. 2022, 12, 931696. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Lam, P.H.; Vo, H.D.N.; Truong, L.M.T.; Dang, D.M.T.; Dang, C.M.; Doan, T.C.D.; Mollaamin, F.; Monajjemi, M. Anesthetic effects of clove basil essential oil (Ocimum gratissimum) microemulsion on Asian redtail catfish (Hemibagrus wyckioides) and its biochemical stress indicators. Fishes 2025, 10, 104. [Google Scholar] [CrossRef] [Scilit]
- Gao, P.; Chen, R.; Lin, S.; Yu, H.; Zhang, X. Effects of MS-222 on the physiological and biochemical response, histomorphology, gut microbiota, and flesh quality in largemouth bass (Micropterus salmoides). Fish Physiol. Biochem. 2025, 51, 176. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Félix, L.; Correia, R.; Sequeira, R.; Ribeiro, C.; Monteiro, S.; Antunes, L.; Silva, J.; Venâncio, C.; Valentim, A. MS-222 and propofol sedation during and after the simulated transport of Nile tilapia (Oreochromis niloticus). Biology 2021, 10, 1309. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Saccol, E.M.; Toni, C.; Pês, T.S.; Ourique, G.M.; Gressler, L.T.; Silva, L.V.; Mourao, R.H.; Oliveira, R.B.; Baldisserotto, B.; Pavanato, M.A. Anesthetic and antioxidant effects of Myrcia sylvatica (G. Mey.) DC. and Curcuma longa L. essential oils on tambaqui (Colossoma macropomum). Aquac. Res. 2017, 48, 2012–2031. [Google Scholar]
- Toni, C.; Martos-Sitcha, J.A.; Baldisserotto, B.; Heinzmann, B.M.; de Lima Silva, L.; Martínez-Rodríguez, G.; Mancera, J.M. Sedative effect of 2-phenoxyethanol and essential oil of Lippia alba on stress response in gilthead sea bream (Sparus aurata). Res. Vet. Sci. 2015, 103, 20–27. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Soldatov, A.A. Functional effects of the use of anesthetics on teleostean fishes. Inland Water Biol. 2021, 14, 67–77. [Google Scholar] [CrossRef] [Scilit]
- Vieira, R.S.; Rocha, C.A.; Venâncio, C.A.; Félix, L.M. Monoterpenes as natural anesthetics to mitigate stress in fish: Advances using the zebrafish larvae model. Fishes 2026, 11, 289. [Google Scholar] [CrossRef] [Scilit]
- Al-Taee, S.K.; Annaz, M.T.; Al-Badrany, M.S.; Al-Hamdani, A.H. Biochemical and behavioral responses in carp fish exposed to tricaine methane sulfonate (MS-222) as anesthetic drug under transport conditions. Iraqi J. Vet. Sci. 2021, 35, 719–723. [Google Scholar] [CrossRef] [Scilit]
- Ananias, I.D.M.C.; de Melo, C.L.; Costa, D.C.; Ferreira, A.L.; Martins, E.D.F.F.; Takata, R.; Luz, R.K. Menthol as anesthetic for juvenile Lophiosilurus alexandri: Induction and recovery time, ventilatory frequency, hematology and blood biochemistry. Aquaculture 2022, 546, 737373. [Google Scholar] [CrossRef] [Scilit]
- Ferreira, A.L.; Bonifácio, C.T.; e Silva, W.D.S.; Takata, R.; Favero, G.C.; Luz, R.K. Anesthesia with eugenol and menthol for Piaractus brachypomus (Cuvier, 1818): Induction and recovery times, ventilation frequency and hematological and biochemical responses. Aquaculture 2021, 544, 737076. [Google Scholar] [CrossRef] [Scilit]
- Simões-Bueno, L.N.; Copatti, C.E.; Gomes, L.C.; Val, A.L.; Amanajás, R.D.; Caron, B.O.; Heinzmann, B.M.; Baldisserotto, B. Linalool chemotype essential oil from Lippia alba in the anesthesia of fat snook (Centropomus parallelus): Ventilatory rate, biochemical, antioxidant, and oxidative status parameters. Neotrop. Ichthyol. 2024, 22, e230114. [Google Scholar] [CrossRef] [Scilit]
- Hajek, G.J.; Kłyszejko, B. The effects of Propiscin (etomidate) on the behaviour, heart rate, and ventilation of common carp, Cyprinus carpio L. Acta Ichthyol. Piscat. 2004, 34, 129–143. [Google Scholar] [CrossRef] [Scilit]
- Bi, B.; Zhang, S.; Yuan, Y.; Zhang, F.; Gao, Y. Changes of oxygen consumption rates in response to various environmental factors and different anesthetic methods in juvenile hybrid sturgeon, Acipenser baeri♀ × Acipenser schrencki♂. Aquac. Rep. 2024, 37, 102225. [Google Scholar] [CrossRef] [Scilit]
- Jia, Y.; Xie, T.; Gao, Y.; Qin, H.; Guan, C. Anesthetics efficacy and physiological response of MS222 and clove oil in spotted knifejaw Oplegnathus punctatus. Aquac. Rep. 2022, 25, 101201. [Google Scholar] [CrossRef] [Scilit]
- Silva, B.A.D.O.; Ferreira, A.L.; Acunha, R.M.G.; Almeida, R.G.D.S.; dos Santos, J.G.; Fernandes, C.E.; Chaves, F.C.M.; Chagas, E.C.; Cardoso, C.A.L.; de Campos, C.M.; et al. Anesthetic efficiency of essential oil of Zingiber officinale for Astyanax lacustris: Induction time, recovery time, ventilatory frequency, and gill histopathology. Aquac. Int. 2024, 32, 3733–3746. [Google Scholar] [CrossRef] [Scilit]
- Parker-Graham, C.A.; Lima, K.M.; Soto, E. The effect of anesthetic time and concentration on blood gases, acid-base status, and electrolytes in koi (Cyprinus carpio) anesthetized with buffered tricaine methanesulfonate (MS-222). J. Zoo Wildl. Med. 2020, 51, 102–109. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Sladky, K.K.; Swanson, C.R.; Stoskopf, M.K.; Loomis, M.R.; Lewbart, G.A. Comparative efficacy of tricaine methanesulfonate and clove oil for use as anesthetics in red pacu (Piaractus brachypomus). Am. J. Vet. Res. 2001, 62, 337–342. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kugino, K.; Tamaru, S.; Hisatomi, Y.; Sakaguchi, T. Long-duration carbon dioxide anesthesia of fish using ultra fine (nano-scale) bubbles. PLoS ONE 2016, 11, e0153542. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Ventura, A.S.; Jerônimo, G.T.; de Oliveira, S.N.; de Araújo Gabriel, A.M.; Cardoso, C.A.L.; Teodoro, G.C.; Corrêa Filho, R.A.C.; Povh, J.A. Natural anesthetics in the transport of Nile tilapia: Hematological and biochemical responses and residual concentration in the fillet. Aquaculture 2020, 526, 735365. [Google Scholar] [CrossRef] [Scilit]
- Phuong, L.M.; Damsgaard, C.; Huong, D.T.T.; Ishimatsu, A.; Wang, T.; Bayley, M. Recovery of blood gases and haematological parameters upon anesthesia with benzocaine, MS-222 or Aqui-S in the air-breathing catfish Pangasianodon hypophthalmus. Ichthyol. Res. 2017, 64, 84–92. [Google Scholar]
- Rummer, J.L.; Brauner, C.J. Root effect haemoglobins in fish may greatly enhance general oxygen delivery relative to other vertebrates. PLoS ONE 2015, 10, e0139477. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Bugman, A.M.; Langer, P.T.; Hadzima, E.; Rivas, A.E.; Mitchell, M.A. Evaluation of the anesthetic efficacy of alfaxalone in oscar fish (Astronotus ocellatus). Am. J. Vet. Res. 2016, 77, 239–244. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Minter, L.J.; Bailey, K.M.; Harms, C.A.; Lewbart, G.A.; Posner, L.P. The efficacy of alfaxalone for immersion anesthesia in koi carp (Cyprinus carpio). Vet. Anaesth. Analg. 2014, 41, 398–405. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Gomes, D.P.; Chaves, B.W.; Becker, A.G.; Baldisserotto, B. Water parameters affect anesthesia induced by eugenol in silver catfish, Rhamdia quelen. Aquac. Res. 2011, 42, 878–886. [Google Scholar] [CrossRef] [Scilit]
- Brønstad, A. Good anesthesia practice for fish and other aquatics. Biology 2022, 11, 1355. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Rożyński, M.; Demska-Zakęś, K.; Sikora, A.; Zakęś, Z. Impact of inducing general anesthesia with Propiscin (etomidate) on the physiology and health of European perch (Perca fluviatilis L.). Fish Physiol. Biochem. 2018, 44, 927–937. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Sousa, A.G.; Pacheco, A.H.; Siqueira-Pinto, G.A.; dos Reis, G.T.; Fugimura, M.M.; Vaz, L.J.; Marcusso, P.F.; Ramos-Espinoza, F.C.; da Silva Claudiano, G. Comparative study of hematological parameters of Colossoma macropomum anesthetized with benzocaine and eugenol by using different anticoagulants. Aquac. Int. 2021, 29, 977–988. [Google Scholar] [CrossRef] [Scilit]
- Hoseini, S.M.; Rajabiesterabadi, H.; Khalili, M.; Yousefi, M.; Hoseinifar, S.H.; Van Doan, H. Antioxidant and immune responses of common carp (Cyprinus carpio) anesthetized by cineole: Effects of anesthetic concentration. Aquaculture 2020, 520, 734680. [Google Scholar] [CrossRef] [Scilit]
- Devi, A.A.; Kamilya, D. Efficacy and effects of clove oil and MS-222 on the immune-biochemical responses of juvenile rohu Labeo rohita. Aquac. Res. 2019, 50, 957–963. [Google Scholar] [CrossRef] [Scilit]
- Ortuno, J.; Esteban, M.A.; Meseguer, J. Effects of four Anesthetics on the innate immune response of gilthead seabream (Sparus aurata L.). Fish Shellfish Immunol. 2002, 12, 49–59. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Bahi, A.; Guardiola, F.A.; Esteban, M.A. A time course study of glucose levels and innate immune response in gilthead seabream (Sparus aurata L.) after exposure to clove oil-eugenol derived Anesthetic. Fish Shellfish Immunol. 2018, 77, 280–285. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kanani, H.G.; Soltani, M.; Mirzargar, S.S. Effect of tricaine methanesulfonate (MS-222), clove oil and electro-anesthesia on respiratory burst activity in whole blood and serum alternative complement response in rainbow trout (Oncorhynchus mykiss) during the narcosis stage. Fish Shellfish Immunol. 2013, 34, 692–696. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Soltanian, S.; Hoseinifar, S.H.; Gholamhosseini, A. Modulation of rainbow trout (Oncorhynchus mykiss) cutaneous mucosal immune responses following anesthesia: A comparative study on different anesthetic agents. Fish Shellfish Immunol. 2018, 80, 319–324. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Cao, X.; Wang, Y.; Yu, N.; Le, Q.; Hu, J.; Yang, Y.; Kuang, S.; Zhang, M.; Sun, Y.; Gu, W.; et al. Transcriptome analysis reveals the influence of Anesthetic stress on the immune system of crucian carp (Carassius auratus) under the process of treatment and low concentration transport by MS-222 and Eugenol. Aquac. Res. 2019, 50, 3138–3153. [Google Scholar] [CrossRef] [Scilit]
- Wang, W.; Dong, H.; Sun, Y.; Sun, C.; Duan, Y.; Gu, Q.; Li, Y.; Xie, M.; Zhang, J. Immune and physiological responses of juvenile Chinese sea bass (Lateolabrax maculatus) to eugenol and tricaine methanesulfonate (MS-222) in gills. Aquac. Rep. 2020, 18, 100554. [Google Scholar] [CrossRef] [Scilit]
- Palić, D.; Herolt, D.M.; Andreasen, C.B.; Menzel, B.W.; Roth, J.A. Anesthetic efficacy of tricaine methanesulfonate, metomidate and eugenol: Effects on plasma cortisol concentration and neutrophil function in fathead minnows (Pimephales promelas Rafinesque, 1820). Aquaculture 2006, 254, 675–685. [Google Scholar] [CrossRef] [Scilit]
- Chance, R.J.; Cameron, G.A.; Fordyce, M.; Noguera, P.; Wang, T.; Collins, C.; Secombes, C.J.; Collet, B. Effects of repeated anesthesia on gill and general health of Atlantic salmon, Salmo salar. J. Fish Biol. 2018, 93, 1069–1081. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Dong, H.; Wang, W.; Duan, Y.; Li, H.; Liu, Q.; Sun, Y.; Zhang, J. Transcriptomic analysis of juvenile Chinese sea bass (Lateolabrax maculatus) anesthetized by MS-222 (tricaine methanesulfonate) and eugenol. Fish Physiol. Biochem. 2020, 46, 909–920. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Narumanchi, S.; Perttunen, S.; Laine, P.; Kosonen, R.; Lakkisto, P.; Laine, M.; Tikkanen, I.; Paavola, J. Tricaine, eugenol and etomidate for repetitive procedural anesthesia in adult zebrafish, Danio rerio: Effect on stress and behavior. Front. Vet. Sci. 2025, 12, 1562425. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Ayala-Soldado, N.; Mora-Medina, R.; Molina-López, A.M.; Lora-Benítez, A.J.; Moyano-Salvago, R. Evaluation of the effectiveness of Eugenol and MS-222 as anesthetics in zebrafish in repeated exposures and post-anesthesia behaviour. Animals 2024, 14, 2418. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Suquet, M.; De Kermoysan, G.; Araya, R.G.; Queau, I.; Lebrun, L.; Le Souchu, P.; Mingant, C. Anesthesia in Pacific oyster, Crassostrea gigas. Aquat. Living Resour. 2009, 22, 29–34. [Google Scholar] [CrossRef] [Scilit]
- Song, J.; Langley, A.A.; Banks, M.A.; Calla, B. Effects of repeated hemolymph sampling from adductor muscles of relaxed Pacific oysters (Magallana gigas). PLoS ONE 2025, 20, e0333208. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Rojas-Figueroa, A.; Angulo, C.; Araya, R.; Granados-Amores, A.; Guardiola, F.A.; Saucedo, P.E. Comparative analysis of anesthetic agents used in pre-operative therapy for pearl culture in the red abalone Haliotis rufescens (Swainson, 1822). Aquaculture 2023, 574, 739623. [Google Scholar] [CrossRef] [Scilit]
- Rojas-Figueroa, A.; Lastra, P.E.S.; Valadez, C.E.A. Modulación Fisiológica e Inmunológica del Abulón Rojo Haliotis Rufescens (Swainson, 1822) Durante la Anestesia e Injerto en el Proceso Inicial de Formación de Perlas. 2024. Available online: https://cibnor.repositorioinstitucional.mx/jspui/handle/1001/3017?utm_source=chatgpt.com (accessed on 6 July 2026).
- da Paz, C.A.; da Costa, B.M.P.A.; Hamoy, M.K.O.; Dos Santos, M.F.; da Rocha, L.L.; da Silva Deiga, Y.; de Sousa Barbosa, A.; do Amaral, A.L.G.; Câmara, T.M.; Barbosa, G.B.; et al. Establishing a safe anesthesia concentration window for Nile tilapia (Oreochromis niloticus) (Linnaeus 1758) by monitoring cardiac activity in eugenol immersion baths. Comp. Biochem. Physiol. C Toxicol. Pharmacol. 2024, 278, 109839. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- de Sousa Reis, T.; da Paz, C.A.; Quirino, L.E.; de Araújo, D.B.; Barbosa, G.B.; Santos, R.N.O.; de Campos, A.L.C.; Amoras, L.H.B.; dos Santos Brito, M.V.; Hamoy, M. Behavioral, electrocardiographic, and opercular beat recording characterization of tilapia (Oreochromis niloticus) in immersion bath with different concentrations of tricaine (MS-222). Aquaculture 2025, 596, 741700. [Google Scholar] [CrossRef] [Scilit]
- De Araújo, E.R.L.; Torres, M.F.; Da Costa, B.M.P.A.; Hamoy, M.; Sampaio, L.A.; Barbas, L.A.L. Electroencephalographic response in juvenile tambaqui, Colossoma macropomum, exposed to short-term Anesthetic baths with geraniol and citronellol. Biology 2023, 12, 90. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Funnell, T.R.; Binder, T.R.; Vandergoot, C.S. Cardiac and behavioral responses to chemical and electrical immobilization in Lake Trout. Trans. Am. Fish. Soc. 2025, 154, 205–213. [Google Scholar] [CrossRef] [Scilit]
- Hoyo-Alvarez, E.; Cabrera-Álvarez, M.J.; Ginés, R.; Roque, A.; Arechavala-Lopez, P. Cardiac activity cessation during slaughtering combinations in farmed European seabass. J. World Aquac. Soc. 2026, 57, e70062. [Google Scholar]
- Reid, C.H.; Faust, M.D.; Raby, G.D.; Brenden, T.O.; Cooke, S.J.; Vandergoot, C.S. Postrelease survival and migration behavior of adult Walleye following intracoelomic transmitter implantation using two methods of electro-immobilization. Trans. Am. Fish. Soc. 2022, 151, 100–111. [Google Scholar] [CrossRef] [Scilit]
- Svendsen, E.; Føre, M.; Randeberg, L.L.; Alfredsen, J.A. Design of a novel biosensor implant for farmed Atlantic salmon (Salmo salar). In Proceedings of the 2021 IEEE Sensors, Sydney, Australia, 31 October–3 November 2021; IEEE: Piscataway, NJ, USA, 2021; pp. 1–4. [Google Scholar]
- Liu, T.; Han, R.; Jiang, Y.; Sun, J.; Wu, H.; Liu, Q. Biosensor-based comparison of stress responses in Qingtian paddy field carp (Cyprinus carpio var. qingtianensis) and Xingguo red carp (Cyprinus carpio var. singuonensis) under acute shallow water conditions. Biology 2025, 14, 1303. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Minaz, M.; Alparslan, C.; Er, A. Using machine learning to predict anesthetic dose in fish: A case study using nutmeg oil. Front. Vet. Sci. 2025, 12, 1652115. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Antonucci, F.; Costa, C. Precision aquaculture: A short review on engineering innovations. Aquac. Int. 2020, 28, 41–57. [Google Scholar]


| Essential Oil/Plant Source | Major Active Compounds | Principal Pharmacological Actions | Key Observations | References |
|---|---|---|---|---|
| clove oil (Syzygium spp.) | Eugenol | GABA modulation, CNS depression, stress reduction | Rapid anesthesia and reduced stress responses | [57] |
| Lippia alba EO | Citral, linalool | HPI-axis modulation and stress reduction | Prevented cortisol elevation in silver catfish | [58] |
| Pilocarpus pennatifolius and Cordia verbenacea EO | Mixed terpenoids | Sedative and anesthetic activity | Species- and dose-dependent responses in tilapia | [60] |
| Oregano oil (Origanum spp.) | Carvacrol | Sedative and stress-gene modulation | Fast anesthesia and altered glucocorticoid signaling | [61] |
| Eucalyptus oil (Eucalyptus spp.) | 1,8-Cineole | CNS depression and endocrine modulation | Effective anesthesia but possible cortisol elevation | [61,62] |
| Magnolia denudata EO | Mixed monoterpenes | Sedative and branchial protective effects | Lower gill damage than eugenol | [63] |
| Nutmeg EO (Myristica fragrans) | α-/β-pinene | Sedative and anesthetic effects | High doses associated with histological and genotoxic alterations | [64] |
| Anesthetic | Route | Pharmacokinetic Characteristics | Effects on Blood Biochemistry | Regulatory Status | References |
|---|---|---|---|---|---|
| MS-222 Tricaine methanesulfonate | Immersion bath | first-order elimination Cmax = ~70–78 µg/mL Tmax = Within 5 min of bath exposure eliminated 2× faster at 28 °C vs. 22 °C in seabass moderate to large tissue distribution earliest peak in brain and gill and lowest in muscle Body clearance fastest among compared Anesthetics Branchial and renal excretion hepatic metabolism by acetylation and deacetylation | ↑ (blood lactate, glucose, Ca2+, Mg2+, Na+) ↓ blood pH ↑ plasma cortisol at end of exposure Recovery parallels plasma clearance | FDA Approved 21-day withdrawal; Ictaluridae, Salmonidae, Esocidae, Percidae only | [8,9,73] |
| Benzocaine Ethyl para-aminobenzoate | Immersion bath | Two-compartment open model first-order elimination three-compartment model after i.a. bolus in trout Cmax = Rapid, highly variable initial distribution peak near/below LOQ by 90 min in trout Tmax = within minutes of bath initiation rapid initial phase elimination followed by slow terminal phase pharmacokinetic parameters increase with water temperature largest Vd among the compared agents dose-dependency of clearance rate body clearance rapid in highly perfused tissues MRT similar across doses Branchial elimination (primary) of parent drug and acetylated metabolite polar de-ethylated and de-ethylated-acetylated metabolites excreted slowly via urine metabolised by acetylation and hydrolysis into ≥3 compounds | ↑ plasma cortisol, catecholamines recovery time parallels plasma clearance ↓ blood cortisol and glucose vs. unsedated controls in transport studies | Unapproved for food fish no MRL established used in non-food fish research | [8,9,73] |
| Eugenol 4-Allyl-2-methoxyphenol and the active constituent of clove oil | Immersion bath (75 mg/L, 15 min) Also studied in Litopenaeus vannamei (Pacific white shrimp) | Biphasic elimination curve non-compartmental analysis in shrimp Cmax = 10.53 µg/mL (trout plasma); 15.05 µg/mL (shrimp haemolymph, 8 h sustained-release formulation) Tmax = ~0.25 h (15 min) post-exposure in trout; ~8 h in shrimp (sustained-release nano-emulsion) Rapid elimination; t½z 1.3 h (hepatopancreas) and 11 h (muscle) in shrimp after 300 mg/L × 5 min immersion AUC0–t 16.55 µg·h/mL; AUC0–∞ 17.04 µg·h/mL (trout) Widely distributed to visceral organs high lipophilicity facilitates tissue partitioning highest residue in muscle > liver in carp rapid absorption across gills hepatic metabolism via glucuronide and sulfate conjugates excreted in bile and urine | Generally lower cortisol stress response than MS-222 gill irritation at high doses rapid Anesthetic induction minimal haematological changes at recommended doses | Approved as AQUI-S 20E (10% eugenol) in several countries. Withdrawal period required for food fish | [24] |
| Isoeugenol trans-2-Methoxy-4-propenylphenol and the active constituent of AQUI-S™ | Immersion bath | Two-compartment open model first-order elimination Rapid uptake during bath peak plasma coincides with end of exposure Slowest elimination among commercial anesthetics tissue half-life in salmon fillet substantially longer smallest Vd among compared agents, yet prolonged tissue retention due to lipophilicity slowest clearance among compared agents recovery time parallels slow plasma clearance prolonged sedation relative to MS-222 and benzocaine muscle residue depletion requires extended withdrawal | ↑ plasma cortisol | Withdrawn or restricted in several jurisdictions (e.g., NZ, EU) due to prolonged muscle residues. AQUI-S approved in limited contexts | [74] |
| Metomidate Methyl 1-(1-phenylethyl)-1H-imidazole-5-carboxylate | IV and immersion bath | Multi-compartmental rapid uptake, distribution, and excretion oral bioavailability 100% in turbot Cmax = 9.5 mg/L (halibut, end of 5 min bath); 13.3 mg/L (turbot, end of 5 min bath); 7.8 mg/L (turbot, 1 h post oral dose) Tmax = Immediately post-bath (immersion); ~1 h after oral administration in turbot species- and temperature-dependent elimination shorter t½ at higher water temperature smaller Vd vs. local Anesthetics consistent with lower lipophilicity relative to eugenol/benzocaine rapid immobilisation within 1 min, slow recovery | Inhibits 11β-hydroxylase suppresses cortisol synthesis (unique among fish Anesthetics) ↓ heart rate, respiration muscle twitching at higher doses | Approved in Norway for salmon investigational use in USA (INAD) not approved EU food fish requires withdrawal period | [75] |
| 2-PE Ethylene glycol monophenyl ether | Immersion bath (200–600 µL/L range across species) | Limited formal PK characterisation in fish plasma dose-independent recovery time suggests first-order-like kinetics rapid absorption across gills inferred from fast induction (<3 min at optimal doses) recovery times 1–5 min at optimal doses suggest rapid elimination residue and withdrawal data lacking for food fish approval high lipid solubility wide tissue distribution inferred metabolised to phenoxyacetic acid (major metabolite) and other products metabolism by hepatic enzymes urinary excretion of metabolites | ↑ plasma cortisol and catecholamines bactericidal and fungicidal properties at Anesthetic concentrations mucus and gill irritation at high doses wide effective concentration range (0.2–0.6 mL/L) No analgesia | Not approved for food fish EU Reg. 2377/90; no MRL; no FDA approval used widely in non-food ornamental and research contexts | [76] |
| Biomarker | Common Response Pattern | Associated Anesthetics | Physiological Implication | References |
|---|---|---|---|---|
| Cortisol | ↑ (occasionally ↓ under optimized doses) | Eugenol, MS-222, cineole, linalool, citronellal, 2-PE | HPI-axis activation or stress mitigation | [89,90] |
| Glucose | ↑ | MS-222, cineole, 2-PE, essential oils | Glycogenolysis, secondary stress response | [92,93] |
| Lactate | ↑ | Eugenol, thymol, cineole, clove basil oil | Anaerobic metabolism, hypoxia | [90,95] |
| Hepatic glycogen | ↑/altered | Myrcia, Curcuma oils | Energy redistribution | [96] |
| AST | ↑ | Eugenol, cineole, MS-222 | Hepatic stress | [80] |
| ALT | ↑ | Essential oils, eugenol | Hepatocellular damage | [98] |
| ALP | ↑ | Cineole, herbal anesthetics | Hepatobiliary disturbance | [80] |
| Creatinine/Uric acid | Mostly unchanged | Cineole, 2-PE | Limited renal toxicity at therapeutic doses | [93,97] |
| Na+/K+/Cl−/Ca2+ | Mild fluctuations | Essential oils, MS-222 | Osmoregulatory disturbance | [87] |
| Na+/K+-ATPase | Altered | Lippia alba, Hesperozygis ringens | Ion transport disruption | [97] |
| Species | Anesthetic | Immunological Responses Observed | Physiological Interpretation | Reference |
|---|---|---|---|---|
| Gilthead seabream Sparas aurata L. | BZC | ↓ Complement activity, phagocytosis, lysozyme, ROS production, pinocytosis within 1 h | Acute innate immunosuppression and reduced leukocyte functional capacity | [122] |
| 2-PE | ↓ Complement activity and phagocytosis within 1 h | Transient suppression of humoral and cellular innate immunity | [122] | |
| MS-222 | Minimal alteration in innate immune parameters | Comparatively lower immunophysiological disturbance | [122] | |
| QD sulphate | Minor immune alterations relative to benzocaine | Mild immunomodulatory effect | [122] | |
| Clove oil | ↓ Hemolytic complement activity at 1 h; ↑ head kidney myeloperoxidase activity at 24 h | Initial immune suppression followed by compensatory leukocyte activation | [123] | |
| Rainbow trout Onchorhynchus mykiss | MS-222 | ↓ Whole-blood respiratory burst activity at 24 h; complement unchanged | Reduced oxidative leukocyte activity without major humoral suppression | [124] |
| Clove oil | ↓ Respiratory burst activity at 24 h | Temporary reduction in phagocyte oxidative response | [124] | |
| Electro-anesthesia | ↓ Respiratory burst activity at 1 and 24 h; complement unchanged | Sustained suppression of leukocyte oxidative defense | [124] | |
| Clove oil | ↑ Mucosal immune enzyme activity after 24 h | Enhanced mucosal defense response | [125] | |
| 2-Phenoxyethanol | ↓ Mucosal immune responses | Suppression of mucosal innate immunity | [125] | |
| MS-222 | Minimal mucosal immune changes | Lower immunotoxic potential | [125] | |
| Common carp Cyprinus carpio | 1,8-Cineole | ↑ Lysozyme activity and bactericidal activity at 24 h (1000 µL L−1) ↑ bactericidal activity immediately and at 24 h at 400 µL L−1 complement unchanged | Mild stress-induced hormetic immune stimulation | [120] |
| Crucian carp Carassius auratus | MS-222 | Altered expression of MHC I, MHC II, CD74, LRRFIP2 | Modulation of antigen presentation and adaptive immune signaling | [126] |
| Eugenol | Altered antigen-presentation gene expression with weaker effects than MS-222 | Transient immune signaling modulation | [126] | |
| Chinese sea bass Lateolabrax maculatus | MS-222 and eugenol | Oxidative stress, apoptosis, and gill immune disturbance after 20 min exposure | Anesthetic-induced epithelial oxidative injury and immune dysregulation | [127] |
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Bardhan, A.; Murthy, S.H.; Pulugurtha, K.; King-Nobles, H.; Chattopadhyay, C.; Mukherjee, D. Anesthetic Driven Hematological Dynamics in Farmed Fish: What Do We Know? Aquac. J. 2026, 6, 26. https://doi.org/10.3390/aquacj6030026
Bardhan A, Murthy SH, Pulugurtha K, King-Nobles H, Chattopadhyay C, Mukherjee D. Anesthetic Driven Hematological Dynamics in Farmed Fish: What Do We Know? Aquaculture Journal. 2026; 6(3):26. https://doi.org/10.3390/aquacj6030026
Chicago/Turabian StyleBardhan, Avishek, Shivananda H. Murthy, Karthik Pulugurtha, Haven King-Nobles, Camelia Chattopadhyay, and Debapriyo Mukherjee. 2026. "Anesthetic Driven Hematological Dynamics in Farmed Fish: What Do We Know?" Aquaculture Journal 6, no. 3: 26. https://doi.org/10.3390/aquacj6030026
APA StyleBardhan, A., Murthy, S. H., Pulugurtha, K., King-Nobles, H., Chattopadhyay, C., & Mukherjee, D. (2026). Anesthetic Driven Hematological Dynamics in Farmed Fish: What Do We Know? Aquaculture Journal, 6(3), 26. https://doi.org/10.3390/aquacj6030026

