Pharmaceutical Drugs in Aquatic Environment and their Toxic Effect on Pangasius sp. : An Overview

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Authors

  • Department of Biotechnology, Rajalakshmi Engineering College, Chennai - 602105 ,IN
  • Department of Biotechnology, Rajalakshmi Engineering College, Chennai - 602105 ,IN
  • B. Tech Biotechnology, Rajalakshmi Engineering College, Chennai - 602105 ,IN
  • B. Tech Biotechnology, Rajalakshmi Engineering College, Chennai - 602105 ,IN
  • B. Tech Biotechnology, Rajalakshmi Engineering College, Chennai - 602105 ,IN

DOI:

https://doi.org/10.18311/ti/2022/v29i4/30376

Keywords:

Antibiotics, Growth Performance, Pangasius sp., Pharmaceutical Effluents.
Toxicology

Abstract

One of the fastest-growing freshwater fish varieties is the Pangasius sp., which has a great capability for production and export growth. When Pangasius sp. is exposed to substances such as diclofenac, phenol, quinolones, sulfonamides, and tetracycline, even at low environmental exposure levels the fish tissue can develop chronic risk, genetic abnormalities, and histopathological changes. They come into contact with these antibiotics mostly through the discharge of pharmaceutical industry effluents, which contain antibiotic residues that are not been completely eliminated by wastewater treatment, thereby posing environmental concerns when released into aquatic ecosystems. The main objective of this review paper is to study the effect of the concentration of pharmaceutical drugs, farming techniques, and various substitutes for antibiotics that can be utilized to enhance the growth performance of Pangasius sp. Few studies conducted on toxicity demonstrated that increased mucus production in the gills and intestines, histological abnormalities in the liver and skin, and impaired immunoglobulin production have all been linked to sublethal phenol concentrations in fish. The consumption of these contaminated Pangasius sp. can raise various human health concerns. Therefore, exposure of Pangasius sp. to the detrimental pharmaceutical drug from industrial effluent must be held serious concern. Further research is required to conserve human health and the ecosystem.

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Published

2023-02-07

How to Cite

Vijaya Geetha, B., Shreenidhi, K. S., Anand, V., Savithakshini, H., & Subashini, S. (2023). Pharmaceutical Drugs in Aquatic Environment and their Toxic Effect on <i>Pangasius sp.</i> : An Overview. Toxicology International, 29(4), 527–540. https://doi.org/10.18311/ti/2022/v29i4/30376
Received 2022-06-07
Accepted 2022-08-18
Published 2023-02-07

 

References

Bound JP, Voulvoulis N. Pharmaceuticals in the aquatic environment –a comparison of risk assessment strategies. Chemosphere. 2004; 56(11): 1143-1155. DOI: https://doi.org/10.1016/j.chemosphere.2004.05.010

Chander V, Negi V, Aswal R, Singh P, Singh R, Dobhal R.Pharmaceutical Compounds in Drinking Water. Journal of Xenobiotics. 2016; 6(1): 1-7. DOI: https://doi.org/10.4081/xeno.2016.5774

Daghrir R, Drogui P. Tetracycline antibiotics in the environment: a review. Environmental Chemistry Letters volume.2013; 11: 209-227. DOI: https://doi.org/10.1007/s10311-013-0404-8

Patneedi CB, Prasadu KD. Impact of pharmaceutical wastes on human life and environment. Rasayan Journal of Chemistry. 2015; 8(1): 67-70.

Almeida , Solé M, M. V. MA, Soares, Freitas R. Anti-inflammatory drugs in the marine environment: Bioconcentration, metabolism and sub-lethal effects in marine bivalves. Environmental Pollution.2020; 263. DOI: https://doi.org/10.1016/j.envpol.2020.114442

Singh AK,Lakra WS. Culture of Pangasianodonhypophthalmus into India: Impacts and Present Scenario. Pakistan Journal of Biological Sciences.2012; 15: 19-26. DOI: https://doi.org/10.3923/pjbs.2012.19.26

Srivastava SC, Verma P, Verma AK, Singh AK. Assessment for possible metal contamination and human health risk of Pangasianodonhypophthalmus (Sauvage, 1878) farming, India.International Journal of Fisheries and Aquatic Studies. 2014.

Ali H, Haque MM, Belton B. Striped catfish (Pangasianodonhypophthalmus, Sauvage, 1878) aquaculture in Bangladesh: an overview. Aquaculture Research. 2013; 44(6): 950-965. DOI: https://doi.org/10.1111/j.1365-2109.2012.03101.x

Mezzelani M, Gorbi S,Regoli F.Pharmaceuticals in the aquatic environments: Evidence of emerged threat and future challenges for marine organisms. Marine Environmental Research.2018; 140: 41-60. DOI: https://doi.org/10.1016/j.marenvres.2018.05.001

Williams ES, Brooks BW. Human Health Risk Assessment for Pharmaceuticals in the Environment: Existing Practice, Uncertainty, and Future Directions. Human Pharmaceuticals in the Environment.2012; 4: 167-224. DOI: https://doi.org/10.1007/978-1-4614-3473-3_8

Jasdeep S, Simranjeet S, Shivika D, Joydeep D, Daljeet SD, Anchal S, Joginder S. Toxicological Effects of Lambda-Cyhalothrin on Liver, Kidney and Testis of Indian Catfish Clariasbatrachus. Toxicology International. 2015; 22(3). DOI: https://doi.org/10.22506/ti/2015/v22/i3/137637

Andrieu M, Rico A, Phu TM, Huong DTT, Phuong NT. Ecological risk assessment of the antibiotic enrofloxacin applied to Pangasius catfish farms in the Mekong Delta, Vietnam. Chemosphere.2015; 119: 407-414. DOI: https://doi.org/10.1016/j.chemosphere.2014.06.062

Boxall ABA. The environmental side effects of medication. EMBO Reports. 2004; 5(12): 1110-1116. DOI: https://doi.org/10.1038/sj.embor.7400307

Cunningham VL, Binks SP, Olson MJ. Human health risk assessment from the presence of human pharmaceuticals in the aquatic environment. Regulatory Toxicology and Pharmacology. 2009; 53 (1): 39-45. DOI: https://doi.org/10.1016/j.yrtph.2008.10.006

Williams M, Kookana RS, Mehta A, Yadav SK, Tailor BL, Maheshwari B. Emerging contaminants in a river receiving untreated wastewater from an Indian urban centre. Science of the Total Environment.2019; 647: 1256-1265. DOI: https://doi.org/10.1016/j.scitotenv.2018.08.084

Suthar S, Sharma J, Chabukdhara M, Nema MK. Water quality assessment of river Hindon at Ghaziabad, India: impact of industrial and urban wastewater. Environmental Monitoring and Assessment. 2010; 165(1-4): 103-120. DOI: https://doi.org/10.1007/s10661-009-0930-9

Schellenberg T, Subramanian V, Ganeshan G, Tompkins D, Pradeep R. Wastewater Discharge Standards in the Evolving Context of Urban Sustainability–The Case of India. Frontiers of Environmental Science & Engineering. 2020. DOI: https://doi.org/10.3389/fenvs.2020.00030

Buser RH, Poiger T, Müller MD. Occurrence and Fate of the Pharmaceutical Drug Diclofenac in Surface Waters:? Rapid Photodegradation in a Lake. Environmental Science & Technology. 1998; 32(22): 3449-3456. DOI: https://doi.org/10.1021/es980301x

Afshan S, Ali S,Ameen U S, Farid M, Bharwana SA, Hannan F, Ahmad R. Effect of different heavy metal pollution on fish. Research Journal of Chemical and Environmental Sciences. 2014; 2(1): 74-79.

Das PR, HossainMd K, Sarker BS, Parvin A, Das SS, Moniruzzaman M and Saha B. Heavy metals in farm sediments, feeds and bioaccumulation of some selected heavy metals in various tissues of farmed Pangasius hypophthalmus in Bangladesh. Journal of Fisheries and Aquatic Science.2017; 8:3.

Corcoran J, Winter MJ, Tyler CR. Pharmaceuticals in the aquatic environment: A critical review of the evidence for health effects in fish. Critical Reviews in Toxicology. 2010;40(4): 287-304. DOI: https://doi.org/10.3109/10408440903373590

Wang N, Nkejabega N, Hien NN, Huynh TT, Silvestre F, Phuong NT, Danyi S, Widart J, Douny C, Scippo ML, Kestemont P, Huong D TT. Adverse effects of enrofloxacin when associated with environmental stress in Tra catfish (Pangasianodon hypophthalmus). Chemosphere. 2009; 77(11): 1577-84. DOI: https://doi.org/10.1016/j.chemosphere.2009.09.038

Jansomboon W, Boontanon SK, Boontanon N, Polprasert C. Determination and health risk assessment of enrofloxacin, flumequine and sul- famethoxazole in imported Pangasius catfish products in Thailand. Journal of Environmental Science and Health Part B. 2018; 53(2): 108-115. DOI: https://doi.org/10.1080/03601234.2017.1388655

Phu TM, Douny D, Scippo ML, Pauw ED, Thinh NQ, Huong DTT, Vinh HP, Phuong N T, Dalsgaard A. Elimination of enrofloxacin in striped catfish (Pangasianodonhypophthalmus) following on-farm treatment. Anders Dalsgaard Aquaculture.2015; 438: 1-5. DOI: https://doi.org/10.1016/j.aquaculture.2014.12.032

Storey JM, Clark SB, Johnson AS, Andersen WC, Turnipseed SB, Lohne JJ, Burger RJ, Ayres PR, Carr JR, Madson MR. Analysis of sulfonamides, trimethoprim, fluoroquinolones, quinolones, triphenylmethane dyes and methyltestosterone in fish and shrimp using liquid chromatography–mass Spectrome- try. Journal of Chromatography B. 2014; 972: 38-47. DOI: https://doi.org/10.1016/j.jchromb.2014.09.009

Binh VN, Dang N, Anh NTK, Ky LX, Thai PK. Antibiotics in the aquatic environment of vietnam: Sources, concentrations, risk and control strategy. Chemosphere.2018; 197: 438-450. DOI: https://doi.org/10.1016/j.chemosphere.2018.01.061

Bortolotte AR, Daniel D, Braga PCA, Reyes FGR. A simple and high-throughput method for multiresidue and multiclass quantitation of antimicrobials in Pangasius (Pangasionodon hypophthalmus) fillet by liquid chromatography coupled with tandem mass Spectrometry. Journal of Chromatography B. 2019; 1124:17-25. DOI: https://doi.org/10.1016/j.jchromb.2019.05.034

Jansomboon W, Boontanon SK, Boontanon N, Polprasert C, Da CT. Monitoring and determination of sulfonamide antibiotics (sulfamethoxydiazine, sulfamethazine, sulfamethoxazole and sulfadiazine) in imported Pangasius catfish products in Thailand using liquid chromatography coupled with tandem mass Spectrometry. Food Chemistry.2016; 212:6. DOI: https://doi.org/10.1016/j.foodchem.2016.06.026

Tišler T, Kon?an JZ. Comparative assessment of toxicity of phenol, formaldehyde, and industrial wastewater to aquatic organisms.Water, Air, and Soil Pollution.1997; 97: 315-322. DOI: https://doi.org/10.1007/BF02407469

Aisiah S, Prajitno A, Maftuch, Yuniarti A.The potential of bangkal leaf (Naucleasubdita [Korth.]Steud. extract as antibacterial in catfish Pangasius hypophthalmus culture. Aquac Aquar Conserv Legis. 2019; 2(6): 2093-2102.

Saha NC, Bhunia F, Kaviraj A. Toxicity of Phenol to Fish and Aquatic Ecosystems. Bulletin of Environmental Contamination and Toxicology.1999; 63(2): 195-202. DOI: https://doi.org/10.1007/s001289900966

Balkiny HE. Determination of Veterinary Pharmaceuticals in Production Wastewater by TLC- densitometry. Analytical Chemistry Letters. 2014; 4(5-6): 391.328. DOI: https://doi.org/10.1080/22297928.2014.925823

Hossain M Md, Barman AA, Rahim M Md, Hassan TD, Begum M,Bhattacharjee D. Oxytetracycline residues in thaipangas Pangasianodonhypophthalmus sampled from sylhetsadarupazila, Bangladesh. Bangladesh Journal of Zoology. 2018; 46(1): 81. DOI: https://doi.org/10.3329/bjz.v46i1.37629

Vijaya G, Sujata R, Shreenidhi KS, Sundararaman TR. Histopathological and HPLC Analysis in the Hepatic Tissue of Pangasius sp. Exposed to Diclofenac. Polish Journal of Environmental Studies. 2018; 27(6): 2493-2498. DOI: https://doi.org/10.15244/pjoes/75829

Ahmed N, AlamMd F, Hasan MR. The economics of sutchi catfish (Pangasianodonhypophthalmus) aquaculture under three different farming systems in rural Bangladesh. Aquaculture Research. 2010; 41(11): 1668-1682. DOI: https://doi.org/10.1111/j.1365-2109.2010.02549.x

Monir MS, Haque MR, Rahman S. Study on Technical aspects of Pangasius(Pangasianodonhypophthalmus) farming in Mymensingh Region. Int. J. Sustain. Crop Prod. 2011; 6(1): 36-42.

Haquea MM, Hasana NA, Eltholth MM, Saha P, Mely SS, Rahman T, Murray FJ. Assessing the impacts of in-feed probiotic on the growth performance and health condition of Pangasius (Pangasianodonhypophthalmus) in a farm trial. Aquaculture Reports. 2021; 20(28): 100699. DOI: https://doi.org/10.1016/j.aqrep.2021.100699

Lakra WS, Singh A K. Risk analysis and sustainability of Pangasianodonhypophthalmus culture in India. Genetics & biodiversity.2010; 1: 34-37.

Nguyen TP. On-farm feed management practices for striped catfish (Pangasianodonhypophthalmus) in Mekong River Delta, Viet Nam. FAO Fisheries and Aquaculture.2013; 241-267.

ZamanMd FU, SamadMd A, Islam Md A, Hasan-Uj-JamanMd, Khondoker S, Abdulla-Al-Asif. Assessment of sustainability of Pangasius (Pangasiushypophthalmus) farming at Jhikargachhaupazila in Jessore district, Bangladesh.International Journal of Fauna and Biological Studies. 2017; 4(5B): 109-119.

Vijaya GB, Shreenidhi KS, Sundararaman TR. A Study on the Oxidative Stress Status of Pangasius sp. Exposed to Phenol and Clofibrate Running title: Oxidative Stress Status of Pangasius sp. Zeichen Journal. 2021; 7(1): 23-32.

Vijaya GB, Shreenidhi KS, Vadhana PP, Purnima N, Rashminiza A, Sneha S. Hepatoprotective action of aqueous extract of Artemisia pallens leaves in Clofibrate and Phenol treated freshwater fish Pangasius sp. BIOTECHNOLOGIA ACTA. 2021; 14: 67-77. DOI: https://doi.org/10.15407/biotech14.02.067

Khan N, Atique U, Ashraf M, Mustafa A, Mughal MS, Rasool F, Azmat H, Tayyab M and K J. Effect of Various Protein Feeds on the Growth, Body Composition, Hematology and Endogenous Enzymes of Catfish (Pangasiushypophthalmus). Pakistan Journal of Zoology.2018; 13: 112-119.

Batool SS, Khan N, Atique U, Azmat H, Iqbal KJ, Mughal DH, Ahmad MS, Batool S, Munawar S, Dogar S, Nawaz M and Amjad S. Impact of Azomite Supplemented Diets on the Growth and Body Composition of Catfish (Pangasiushypophthalmus). Pakistan Journal of Zoology.2018; 8-12.

Ut Vu, Huynh TG. Optimized Live Feed Regime Significantly Improves Growth Performance and Survival Rate for Early Life History Stages of Pangasius Catfish (Pangasianodonhypophthalmus). Fishes. 2020; 5(3): 20. DOI: https://doi.org/10.3390/fishes5030020

Phumee P, Hashim R, Aliyu-Paiko M, Shu-ChienA C. Effects of dietary protein and lipid content on growth performance and biological indices of iridescent Shark (Pangasiushypophthalmus,Sauvage 1878) fry. Aquaculture Research. 2009; 40(4): 456-463. DOI: https://doi.org/10.1111/j.1365-2109.2008.02116.x

Thi Da C, Lundh T, Jan Erik Lindberg JE. Evaluation of local feed resources as alternatives to fish meal in terms of growth performance, feed utilisation and biological indices of striped catfish (Pangasianodonhypophthalmus) fingerlings. Aquaculture.2012; 150-156. DOI: https://doi.org/10.1016/j.aquaculture.2012.08.010

Shreenidhi KS, Priyavadhana P, Purnima N Rashminiza A, Sneha S, VijayaGeetha B. Study on the toxic effects of pharmaceutical drugs – Norfloxacin using Pangasius sp. fish model and its mitigation using Artemisiapallens. ActaEcologicaSinica. 2021.

Shreenidhi KS, Saranya SS, Shreaya B, Sridhar SN, VijayaGeetha B. In Silico Studies and Histopathological Analysis on the Bioremediation Effect of Spirulina in Various Tissues of Diclofenac Treated Pangasiussps.Toxicology International. 2021; 28(3): 239-244.

Galán MJG, Díaz-Cruz MS, Barceló D. Sulfonamide Antibiotics in Natural and Treated Waters: Environmental and Human Health Risks. Emerging Organic Contaminants and Human Health.2012; 71-92. DOI: https://doi.org/10.1007/698_2011_129

Soltani M, Ghosh K, Hoseinifar SH, Kumar V, Lymbery AJ, Roy S,Ringø E. Genus bacillus, promising probiotics in aquaculture: Aquatic animal origin, bio-active components, bioremediation and efficacy in fish and shellfish. Reviews in Fisheries Science & Aquaculture. 2019. DOI: https://doi.org/10.1080/23308249.2019.1597010

Shivashri C, Rajarajeshwari T, Rajasekar P. Hepatoprotective action of celery (Apium graveolens) leaves in acetaminophen-fed freshwater fish (Pangasius sutchi). Fish Physiol Biochem. 2013; 39: 1057-1069. DOI: https://doi.org/10.1007/s10695-012-9762-6