References
- Ajewole O.A., Ikhimiukor O.O., Adelowo O.O. (2021). Heavy metals (Cu and Zn) contamination of pond sediment and co-occurrence of metal and antibiotic resistance in Escherichia coli from Nigerian aquaculture. Int. J. Environ. Stud., 78: 773–784.
- Akoto O., Bismark E.F., Darko G., Adei E. (2014). Concentrations and health risk assessments of heavy metals in fish from the Fosu Lagoon. Int. J. Environ. Res., 8: 403–410.
- Akter S., Jahan N., Rohani M.F., Akter Y., Shahjahan M. (2021). Chromium Supplementation in Diet enhances growth and feed utilization of striped catfish (Pangasianodon hypophthalmus). Biol. Trace. Elem. Res., 199: 4811–4819.
- Al-Asgah N.A., Abdel-Warith A.W.A., Younis E.S.M., Allam H.Y. (2015). Haematological and biochemical parameters and tissue accumulations of cadmium in Oreochromis niloticus exposed to various concentrations of cadmium chloride. Saudi J. Biol. Sci., 22: 543–550.
- Al-Busaidi M., Yesudhason P., Al-Mughairi S., Al-Rahbi W.A.K., Al-Harthy K.S., Al-Mazrooei N.A., Al-Habsi S.H. (2011). Toxic metals in commercial marine fish in Oman with reference to national and international standards. Chemosphere, 85: 67–73. Al-Saydeh S.A., El-Naas M.H., Zaidi S.J. (2017). Copper removal from industrial wastewater: A comprehensive review. J. Indus. Eng. Chem., 56: 35–44.
- Alshameri A., He H., Xin C., Zhu J., Xinghu W., Zhu R., Wang H. (2019). Understanding the role of natural clay minerals as effective adsorbents and alternative source of rare earth elements: Adsorption operative parameters. Hydrometallurgy, 185: 149–161.
- Alvarado C., Ramírez J.M., Herrera-López E.J., Cortez-Valladolid D., Ramírez G. (2020). Bioaccumulation of metals in cultured carp (Cyprinus carpio) from Lake Chapala, Mexico. Biol. Trace Elem. Res., 195: 226–238.
- Amirah M.N., Afiza A.S., Faizal W.I.W., Nurliyana M.H., Laili S. (2013). Human health risk assessment of metal contamination through consumption of fish. J. Environ. Pollut. Human Health, 1: 1–5.
- Amlund H., Berntssen M.H.G., Lunestad B.T., Lundebye A.K. (2012). Aquaculture feed contamination by persistent organic pollutants, heavy metals, additives and drug residues. Animal Feed Contam.: Eff. Livest. Food Saf., 205–229.
- Amosu A.O., Robertson-Andersson D.V., Kean E., Maneveldt G.W., Cyster L. (2016). Biofiltering and uptake of dissolved nutrients by Ulva armoricana (Chlorophyta) in a land-based aquaculture system. Int. J. Agric. Biol., 18: 298–304.
- Anderson J.L., Asche F., Garlock T., Chu J. (2017). Aquaculture: Its role in the future of food. Front. Econ. Glob., 17: 159–173.
- Ando M. (2004). Standards for drinking water quality. J. Food Hygienic Soc. Japan, 45.
- Arisekar U., Shakila R.J., Shalini R., Jeyasekaran G., Padmavathy P., Hari M.S., Sudhan C. (2022). Accumulation potential of heavy metals at different growth stages of Pacific white leg shrimp, Penaeus vannamei farmed along the Southeast coast of Peninsular India: A report on ecotoxicology and human health risk assessment. Environ Res., 212: 113105.
- Azanu D., Jørgensen S.E., Darko G., Styrishave B. (2016). Simple metal model for predicting uptake and chemical processes in sewage-fed aquaculture ecosystem. Ecol. Mod., 319: 130–136.
- Balkas T.I., Tügrul S., Salihoǧlu Ǐ. (1982). Trace metal levels in fish and crustacea from Northeastern Mediterranean coastal waters. Mar. Environ. Res., 6: 281–289.
- Bao J., Xing Y., Feng C., Kou S., Jiang H., Li X. (2020). Acute and sub-chronic effects of copper on survival, respiratory metabolism, and metal accumulation in Cambaroides dauricus. Sci. Rep., 10: 16700.
- Barbieri E. (2007). Use of oxygen consumption and ammonium excretion to evaluate the sublethal toxicity of cadmium and zinc on Litopenaeus schmitti (Burkenroad, 1936, Crustacea). Water Environ. Res., 79: 641–646.
- Barbieri E., Carreira-Ferreira A., Oliveira-Rezende K.F. (2017). Cadmium effect on shrimp ammonia excretion (Farfantepenaeus paulensis) at different temperatures and levels. Pan-Am. J. Aquat. Sci., 12: 176–183.
- Bere T., Chia M.A., Tundisi J.G. (2012). Effects of Cr III and Pb on the bioaccumulation and toxicity of Cd in tropical periphyton communities: Implications of pulsed metal exposures. Environ Pollut., 163: 184–191.
- Biney C.A., Ameyibor E. (1992). Trace metal concentrations in the pink shrimp Penaeus notialis from the coast of Ghana. Water Air Soil Pollut., 63: 273–279.
- BIS (2012). Indian Standard for Drinking Water as per BIS specifications (IS 10500-2012) – a presentation by Arghyam.
- Biswas C., Soma S.S., Rohani M.F., Rahman M.H., Bashar A., Hossain M.S. (2021). Assessment of heavy metals in farmed shrimp, Penaeus monodon sampled from Khulna, Bangladesh: An inimical to food safety aspects. Heliyon, 7: 06587.
- Björnerås C., Weyhenmeyer G.A., Evans C.D., Gessner M.O., Grossart H.P., Kangur K., Kokorite I., Kortelainen P., Laudon H., Lehtoranta J., Lottig N., Monteith D.T., Nõges P., Nõges T., Oulehle F., Riise G., Rusak J.A., Räike A., Sire J., Kritzberg E.S. (2017). Widespread Increases in iron concentration in European and North American freshwaters. Global Biogeochem. Cyc., 31: 1488–1500.
- Bonnail E., Sarmiento A.M., DelValls T.A., Nieto J.M., Riba I. (2016). Assessment of metal contamination, bioavailability, toxicity and bioaccumulation in extreme metallic environments (Iberian Pyrite Belt) using Corbicula fluminea. Sci. Total Environ., 544.
- Boularbah A., Schwartz C., Bitton G., Aboudrar W., Ouhammou A., Morel J.L. (2006). Heavy metal contamination from mining sites in South Morocco: 2. Assessment of metal accumulation and toxicity in plants. Chemosphere, 63: 811–817.
- Boyd C. (2002). Standarize terminology for low salinity shrimp culture. Global Aquac. Adv., 7: 58–59.
- Boyd C.E., Massaut L. (1999). Risks associated with the use of chemicals in pond aquaculture. Aquac. Eng., 20: 113–132.
- Canli M., Kalay M.A.O. (2001). Metal (Cd, Pb, Cu, Zn, Fe, Cr, Ni) concentrations in tissues of a fish Sardina pilchardus and a prawn Peaenus japonicus from three stations on the Mediterranean Sea. Bull Environ Contam Toxicol., 67: 75–82.
- Cao Lei, Wang F.L.S. (2017). Research progress on water weight metal pollution in the culture of Spinnaker mussels. Environ. Prot. Circular Econ., 37: 35–38.
- Censi P., Spoto S.E., Saiano F., Sprovieri M., Mazzola S., Nardone G., Di Geronimo S.I., Punturo R., Ottonello D. (2006). Heavy metals in coastal water systems. A case study from the northwestern Gulf of Thailand. Chemosphere, 64: 1167–1176.
- Chandra P., Kulshreshtha K. (2004). Chromium accumulation and toxicity in aquatic vascular plants. Botan. Rev., 70: 313–327.
- Chapman P.M., Wang F., Janssen C., Persoone G., Allen H.E. (1998). Ecotoxicology of metals in aquatic sediments: Binding and release, bioavailability, risk assessment, and remediation. Can. J. Fish. Aqua. Sci., 55: 2221–2243.
- Chen J.C., Lin C.H. (2001). Toxicity of copper sulfate for survival, growth, molting and feeding of juveniles of the tiger shrimp, Penaeus monodon. Aquaculture, 192: 55–65.
- Chen Q.L., Gong Y., Luo Z., Zheng J.L., Zhu Q.L. (2013). Differential effect of waterborne cadmium exposure on lipid metabolism in liver and muscle of yellow catfish Pelteobagrus fulvidraco. Aquat. Toxico., 142–143: 380–386.
- Chen S.C., Lin H.C., Chen W.Y. (2020). Risks of consuming cadmium-contaminated shellfish under seawater acidification scenario: Estimates of PBPK and benchmark dose. Ecotoxicol. Environ. Saf., 201: 110763.
- Cheng Z., Chen K.C., Li K., Bin N.X.P., Wu S.C., Wong C.K.C., Wong M.H. (2013). Arsenic contamination in the freshwater fish ponds of Pearl River Delta: Bioaccumulation and health risk assessment. Environ. Sci. Pollut. Res., 20: 4484–4495.
- Chinni S., Khan R.N., Yallapragada P.R. (2002). Acute toxicity of lead on tolerance, oxygen consumption, ammonia-N excretion, and metal accumulation in Penaeus indicus postlarvae. Ecotoxicol. Environ. Saf., 51: 79–84.
- Chiodi-Boudet L.N., Polizzi P., Romero M.B., Robles A., Marcovecchio J.E., Gerpe M.S. (2015). Histopathological and biochemical evidence of hepatopancreatic toxicity caused by cadmium in white shrimp, Palaemonetes argentinus. Ecotoxicol. Environ. Saf., 113: 231–240.
- Choi J.S., Park S.M., Kim Y.H., Oh S.C., Lim E.S., Hong Y.K., Kim M.R. (2016). Pathogenic microorganisms, heavy metals, and antibiotic residues in seven Korean freshwater aquaculture species. Food Sci. Biotechnol., 25: 1469–1476.
- Cirillo T., Amodio Cocchieri R., Fasano E., Lucisano A., Tafuri S., Ferrante M.C., Carpenè E., Andreani G., Isani G. (2012). Cadmium accumulation and antioxidant responses in Sparus aurata exposed to waterborne cadmium. Arch. Environ. Contam. Toxicol., 62: 118–126.
- Cui K., Liu Y. (1987). Effects of six heavy metals such as mercury on egg hatching and larval survival. Oceans Limnol., 18: 138–144.
- Dąbrowski A., Hubicki Z., Podkościelny P., Robens E. (2004). Selective removal of the heavy metal ions from waters and industrial wastewaters by ion-exchange method. Chemosphere, 56: 91–106.
- Dadar M., Peyghan R., Memari H.R. (2014). Evaluation of the bioaccumulation of heavy metals in white shrimp (Litopenaeus vannamei) along the Persian Gulf Coast. Bull. Environ. Contam. Toxicol., 93: 339–343.
- Darmono D., Denton G.R.W. (1990). Heavy metal concentrations in the banana prawn, Penaeus merguiensis, and leader prawn, P. monodon, in the townsv region of Australia. Bull. Environ. Contam. Toxicol., 44: 479–486.
- Dawood M.A.O., Zommara M., Eweedah N.M., Helal A.I. (2020). The evaluation of growth performance, blood health, oxidative status and immune-related gene expression in Nile tilapia (Oreochromis niloticus) fed dietary nanoselenium spheres produced by lactic acid bacteria. Aquaculture, 515: 734571.
- De Mattia G., Bravi M.C., Laurenti O., De Luca O., Palmeri A., Sabatucci A., Mendico G., Ghiselli A. (2004). Impairment of cell and plasma redox state in subjects professionally exposed to chromium. American J. Indust. Med., 46: 120–125.
- Ding Z., Kong Y., Shao X., Zhang Y., Ren C., Zhao X., Yu W., Jiang T., Ye J. (2019). Growth, antioxidant capacity, intestinal morphology, and metabolomic responses of juvenile Oriental river prawn (Macrobrachium nipponense) to chronic lead exposure. Chemo-sphere, 217: 289–297.
- Domingo J.L. (2016). Nutrients and chemical pollutants in fish and shellfish. Balancing health benefits and risks of regular fish consumption. Critical Rev. Food Sci. Nutri., 56: 979–988.
- EFSA (2010). Scientific Opinion on Lead in Food. EFSA J., 8.
- El Basuini M.F., El-Hais A.M., Dawood M.A.O., El-Sayed Abou-Zeid A., EL-Damrawy S.Z., EL-Sayed Khalafalla M.M., Koshio S., Ishikawa M.D.S. (2016). Effect of different levels of dietary copper nanoparticles and copper sulfate on growth performance, blood biochemical profiles, antioxidant status and immune response of red sea bream (Pagrus major). Aquaculture, 455: 32–40.
- El-Boshy M.E., Risha E.F., Abdelhamid F.M., Mubarak M.S., Hadda T.B. (2015). Protective effects of selenium against cadmium induced hematological disturbances, immunosuppressive, oxidative stress and hepatorenal damage in rats. J. Trace Elem. Med. Biol., 29: 104–110.
- Ezemonye L.I., Adebayo P.O., Enuneku A.A., Tongo I., Ogbomida E. (2019). Potential health risk consequences of heavy metal concentrations in surface water, shrimp (Macrobrachium macrobrachion) and fish (Brycinus longipinnis) from Benin River, Nigeria. Toxicol. Rep., 6: 1–9.
- Farid M., Jahangir M., Abbasi K., Afshan S., Ali S., Shaista Ameen U., Aslam Bharwana S., Hannan F., Ahmad R., Pakistan F. (2014). Effect of different heavy metal pollution on fish. Res. J. Chem. Environ. Sci., 2: 74–79.
- Farrell H., Baker P., Webster G., Jansson E., Szabo E., Zammit A. (2018). An assessment of potential heavy metal contaminants in bivalve shellfish from aquaculture zones along the coast of New South Wales, Australia. Food Prot. Trends, 38: 18–25.
- Feng D., Aldrich C. (2004). Adsorption of heavy metals by biomaterials derived from the marine alga Ecklonia maxima. Hydrometallurgy, 73: 1–10.
- Fernandes C., Fontaínhas-Fernandes A., Cabral D., Salgado M.A. (2008). Heavy metals in water, sediment and tissues of Liza sa-liens from Esmoriz-Paramos lagoon, Portugal. Environ. Monit. Assessm., 136: 267–275.
- Firat Ö., Gök G., Çoǧun H.Y., Yüzereroǧlu T.A., Kargin F. (2008). Concentrations of Cr, Cd, Cu, Zn and Fe in crab Charybdis longicollis and shrimp Penaeus semisulcatus from the Iskenderun Bay, Turkey. Environ. Monit. Assessm., 147: 117–123.
- Frankic A., Hershner C. (2003). Sustainable aquaculture: Developing the promise of aquaculture. Aquac. Int., 11: 517–530.
- Frémion F., Bordas F., Mourier B., Lenain J.F., Kestens T., Courtin-Nomade A. (2016). Influence of dams on sediment continuity: A study case of a natural metallic contamination. Sci. Total Environ., 547: 282–294.
- Frías-Espericueta M.G., Osuna-López J.I., Delgado-Alvarez C.G., Muy-Rangel M.D., López-López G., Izaguirre-Fierro G., Jaimes-Bustamante F., Zazueta-Padilla H.M., Aguilar-Juárez M., Rubio-Carrasco W., Voltolina D. (2015). Changes in metal contents in shrimp cultured in NW Mexico (2000–2010). Environ. Monit. Assessm., 187: 269.
- Fu J., Zhao C., Luo Y., Liu C., Kyzas G.Z., Luo Y., Zhao D., An S., Z.H. (2014). Heavy metals in surface sediments of the Jialu River, China: their relations to environmental factors. J. Hazard Mater., 270: 102–109.
- Fu Z., Xi S. (2020). The effects of heavy metals on human metabolism. Toxicol. Mech. Methods, 30: 167–176.
- Gabaldón C., Marzal P., Ferrer J., Seco A. (1996). Single and competitive adsorption of Cd and Zn onto a granular activated carbon. Water Res., 30: 3050–3060.
- Gautam P.K., Gautam R.K., Banerjee S., Chattopadhyaya M.C., Pandey J.D. (2016). Heavy metals in the environment: fate, transport, toxicity and remediation technologies. Nova Sci. Publishers, 60: 101–130.
- Ghafarifarsani H., Fazle R.M., Raeeszadeh M., Ahani S., Yousefi M., Talebi M., Sazzad Hossain Md. (2024). Pesticides and heavy metal toxicity in fish and possible remediation – a review. Ann. Anim. Sci., 24: 1007–1024.
- Ghazi S., Diab A.M., Khalafalla M.M., Mohamed R.A. (2022). Synergistic effects of selenium and zinc oxide nanoparticles on growth performance, hemato-biochemical profile, immune and oxidative stress responses, and intestinal morphometry of Nile Tilapia (Oreochromis niloticus). Biol. Trace Elem. Res., 200: 364–374.
- Goyer R.A., Clarkson T. (2001). Toxic effects of metals. In: Casarett and Doull’s Toxicol, Klaassen C.D. (ed.). Basic Sci. Poisons, 6: 811–867.
- Guhathakurta H., Kaviraj A. (2000). Heavy metal concentration in water, sediment, shrimp (Penaeus monodon) and Mullet (Liza parsia) in some brackish water ponds of Sunderban, India. Mar. Pollut. Bull., 40: 914–920.
- Han H., Chen X., Chu S. (2005). Cross-linked cationic starch chelating agent for the treatment of heavy metal ions. Water Treat. Technol., 31: 45.
- Hashempour-Baltork F., Jannat B., Tajdar-oranj B., Aminzare M., Sahebi H., Mirza Alizadeh A., Hosseini H. (2023). A comprehensive systematic review and health risk assessment of potentially toxic element intakes via fish consumption in Iran. Ecotoxicol. Environ. Saf., 249: 114349.
- He J., Li Y., Wang C., Zhang K., Lin D., Kong L., Liu J. (2017). Rapid adsorption of Pb, Cu and Cd from aqueous solutions by β-cyclodextrin polymers. Appl. Surface Sci., 426: 29–39.
- He X., Qiu X., Hu C., Liu Y. (2018). Treatment of heavy metal ions in wastewater using layered double hydroxides: A review. J. Disp. Sci. Technol., 39: 792–801.
- Health Canada (2019). Guidelines for Canadian drinking water quality-summary table. Water, air, and climate change bureau, healthy environments and consumer safety branch. Water and Air Quality Bureau, Healthy Environments and Consumer Safety Branch, August, 2012.
- Heidarieh M., Maragheh M.G., Shamami M.A., Behgar M., Ziaei F., Akbari Z. (2013). Evaluate of heavy metal concentration in shrimp (Penaeus semisulcatus) and crab (Portunus pelagicus) with INAA method. SpringerPlus, 2: 1–5.
- Herawati N., Suzuki S., Hayashi K., Rivai I.F., Koyama H. (2000). Cadmium, copper, and zinc levels in rice and soil of Japan, Indonesia, and China by soil type. Bull. Environ. Contami. Toxicol., 64: 33–39.
- Huang G., Li Z., Zhu C., Wang D. (2012). Effect of chitosan oligosaccharide-metal complex on cadmiun removal from oyster Crassostrea gigas. J. Chinese Inst. Food Sci. Technol., 12: 121–126.
- Ighalo J.O., Iwuozor K.O., Igwegbe C.A., Adeniyi A.G. (2021). Verification of pore size effect on aqueous-phase adsorption kinetics: A case study of methylene blue. Colloids and Surfaces A: Physicochem Eng. Aspects, 626: 127119.
- Islam S.M.M., Rohani M.F., Zabed S.A., Islam M.T., Jannat R., Akter Y., Shahjahan M. (2020). Acute effects of chromium on hemato-biochemical parameters and morphology of erythrocytes in striped catfish Pangasianodon hypophthalmus. Toxicol Rep., 7: 664–670.
- Ismail I., Moustafa T. (2016). Biosorption of heavy metals. Heavy Metals: Sources, Toxicity and Remediation Techniques, 3: 131–174.
- Iwuozor K.O. (2019). Qualitative and quantitative determination of anti-nutritional factors of five wine samples. Adv. J. Chem.-Sec. A, 2: 136–146.
- Iwuozor K.O., Gold E.E. (2018). Physico-chemical parameters of industrial efflents from a brewery industry in Imo State, Nigeria. Adv. J. Chem.-Sec. A, 1: 66–78.
- Iwuozor K.O., Ogunfowora L.A., Oyekunle I.P. (2022). Review on sugarcane-mediated nanoparticle synthesis: a green approach. Sugar Tech., 24: 1186–1197.
- Iwuozor K.O., Oyekunle I.P., Oladunjoye I.O., Ibitogbe E.M., Olorunfemi T.S. (2022). A Review on the mitigation of heavy metals from aqueous solution using sugarcane bagasse. Sugar Tech., 24: 1167–1185.
- Jaishankar M., Tseten T., Anbalagan N., Mathew B.B., Beeregowda K.N. (2014). Toxicity, mechanism and health effects of some heavy metals. Interdis. Toxicol, 7: 60–72.
- Javaheri-Baboli M., Velayatzadeh M. (2013). Determination of heavy metals and trace elements in the muscles of marine shrimp, Fenneropenaeus merguiensis from Persian Gulf, Iran. J. Anim. Plant Sci., 23: 786–791.
- Jebakumar J.P.P., Nandhagopal G., Babu B.R., Ragumaran S., Ravichandran V. (2018). Impact of coastal power plant cooling system on planktonic diversity of a polluted creek system. Mar. Pollut. Bull., 133: 378–391.
- Jezierska B., Ługowska K., Witeska M. (2009). The effects of heavy metals on embryonic development of fish (a review). Fish Physiol. Biochem, 35: 625–640.
- Jiang T. (2006). Purification method of heavy metals in bivalve shell-fish. State Intellectual Property Office Jinan University. China, 2: 22.
- Jiang D., Hu Z., Liu F., Zhang R., Duo B., Fu J., Cui Y., Li M. (2014). Heavy metals levels in fish from aquaculture farms and risk assessment in Lhasa, Tibetan autonomous region of China. Ecotoxicol., 23: 577–583.
- Jiang H., Kong X., Wang S.G.H. (2016). Effect of copper on growth, digestive and antioxidant enzyme activities of Juvenile Qihe Crucian Carp, Carassius carassius, during exposure and recovery. Bull. Environ. Contam. Toxicol., 96: 333–340.
- Joseph K.O., Srivastava J.P., Kadir P.M.A. (1992). Acute toxicity of five heavy metals to the prawn, Penaeus indicus (H. Milne Edwards) in brackish water medium. J. Inland Fish. Soc. India., 24: 82–84.
- Ju Y.R., Chen C.W., Chen C.F., Chuang X.Y., Dong C.D. (2017). Assessment of heavy metals in aquaculture fishes collected from southwest coast of Taiwan and human consumption risk. Int. Bio-deterioration Biodegrad., 124: 314–325.
- Karnib M., Kabbani A., Holail H., Olama Z. (2014). Heavy metals removal using activated carbon, silica and silica activated carbon composite. Energy Procedia, 50: 113–120.
- Khulbe K.C., Matsuura T. (2018). Removal of heavy metals and pollutants by membrane adsorption techniques. Appl. Water Sci., 8: 19.
- Kim Y.J., Lee N., Woo S., Ryu J.C., Yum S. (2016). Transcriptomic change as evidence for cadmium-induced endocrine disruption in marine fish model of medaka, Oryzias javanicus. Mol. Cellu. Toxicol., 12: 409–420.
- Koen A., Mccann D.S., Boyle A.J. (2023). Some in vivo effects of chelation. II. Animal experimentation. J. Chronic Diseases., 16: 329–330.
- Krishnakumar P.K., Qurban M.A., Stiboller M., Nachman K.E., Joydas T.V., Manikandan K.P., Mushir S.A., Francesconi K.A. (2016). Arsenic and arsenic species in shellfish and finfish from the western Arabian Gulf and consumer health risk assessment. Sci. Total Environ., 566–567: 1235–1244.
- Kubier A., Wilkin R.T., Pichler T. (2019). Cadmium in soils and groundwater: A review. Appl. Geochem., 108: 104388.
- Kumar A., Yadav A.N., Mondal R., Kour D., Subrahmanyam G., Shabnam A.A., Khan S.A., Yadav K.K., Sharma G.K., Cabral-Pinto M., Fagodiya R.K., Gupta D.K., Hota S., Malyan S.K. (2021). Myco-remediation: A mechanistic understanding of contaminants alleviation from natural environment and future prospect. Chemo-sphere, 284: 131325.
- Kundu G.K., Alauddin M., Akter M.S., Khan M.S., Islam M.M., Mondal G., Islam D., Mohanta L.C., Huque A. (2017). Metal contamination of commercial fish feed and quality aspects of farmed tilapia (Oreochromis niloticus) in Bangladesh. Biores. Comm-(BRC), 3: 345–353.
- Kureishy T.W. (1993). Concentration of heavy metals in marine organisms around Qatar before and after the Gulf War oil spill. Mar. Pollut. Bull., 27: 183–186.
- Kurita K. (2001). Controlled functionalization of the polysaccharide chitin. Prog. Polymer Sci., 26: 1921–1971.
- Latif A., Sheng D., Sun K., Si Y., Azeem M., Abbas A., Bilal M. (2020). Remediation of heavy metals polluted environment using Fe-based nanoparticles: Mechanisms, influencing factors, and environmental implications. Environ. Pollut., 264: 114728.
- Lee M.H., Shiau S.Y. (2002). Dietary copper requirement of juvenile grass shrimp, Penaeus monodon, and effects on non-specific immune responses. Fish Shellfish Immunol., 13: 259–270.
- Lee R.J., Younger A.D. (2002). Developing microbiological risk assessment for shellfish purification. Int. Biodeterioration Biode-grad., 50: 77–183.
- Lee K.G., Kweon H.Y., Yeo J.H., Woo S.O., Han S.M., Kim J.H. (2011). Characterization of tyrosine-rich Antheraea pernyi silk fibroin hydrolysate. Int. J. Biol. Macromol., 48: 223–226.
- Li B., Wang T.W.L. (2013). Study on resin removal of heavy metals from scallop waste enzymatic hydrolysate. Sci. Technol. Food Industry, 14: 55.
- Li Y., Li L., Yu J. (2017). Applications of zeolites in sustainable chemistry. Chem, 3: 928–949.
- Liu F., Wang W. (2011). Metallothionein-like proteins turnover, Cd and Zn biokinetics in the dietary Cd-exposed scallop Chlamys nobilis. Aquac. Toxicol., 105: 361.
- Liu W., Wen Y., Wang M., Gui S., Li X., Fan Y., Yan X., Lin Y., Sun Y., Liu J., Peng L., Liu L., Li D. W., Xiao Y. (2018). Enhanced resistance of triploid crucian carp to cadmiuminduced oxidative and endoplasmic reticulum stresses. Current Mol. Med., 18: 400–408.
- Long Q., Jing Z. (2002). Basic methods and applications of heavy metals in sediments in shelf area. Bull. Oceano-Limnol., 11: 25–32.
- Luo J., Pei S., Jing W., Zou E., Wang L. (2015). Cadmium inhibits molting of the freshwater crab Sinopotamon henanense by reducing the hemolymph ecdysteroid content and the activities of chitinase and N-acetyl-β-glucosaminidase in the epidermis. Comp. Biochem. Physiol. Part - C: Toxicol. Pharmacol., 169: 1–6.
- Madany I.M., Wahab A.A.A., Al-Alawi Z. (1996). Trace metals concentrations in marine organisms from the coastal areas of Bahrain, Arabian Gulf. Water Air Soil Pollut., 91: 233–248.
- Mahmuda M., Rahman M.H., Bashar A., Rohani M.F., Hossain M.S. (2020). Heavy metal contamination in tilapia, Oreochromis niloticus collected from different fish markets of Mymensingh District. J. Agric. Food Environ., 01: 01–05.
- Mangum C.P. (1983). On the distribution of lactate sensitivity among the hemocyanins. Mar. Biol. Lett., 4: 139–149.
- Marcovecchio J.E. (2004). The use of Micropogonias furnieri and Mugil liza as bioindicators of heavy metals pollution in la Plata river estuary, Argentina. Sci. Total Environ., 323: 219–226.
- Martorell I., Perelló G., Martí-Cid R., Llobet J.M., Castell V., Domingo J.L. (2011). Human exposure to arsenic, cadmium, mercury, and lead from foods in Catalonia, Spain: temporal trend. Biol. Trace Elem. Res., 142: 309–322.
- Mehjbeen J., Nazura U. (2013). Haematological indices of Channa punctatus as an indicator of heavy metal pollution in waste water aquaculture pond, Panethi, India. African J. Biotechnol., 12: 520–525.
- Mei D., Jun Y., Jun L. (2021). Review of environmental risk assessment methods of heavy metals in mine tailings. Environ. Sustain. Developm., 46: 143–151.
- Ministry of Health (2018). Drinking-water Standards for New Zealand 2005 (revised 2018). Wellington: Ministry of Health.
- Missel P.J., Lang J.C., Rodeheaver D.P., Jani R. (2016). Design and evaluation of ophthalmic pharmaceutical products. Modern Pharm., 2. CRC Press.
- Mohammed M.H., Williams P.A., Tverezovskaya O. (2013). Extraction of chitin from prawn shells and conversion to low molecular mass chitosan. Food Hydrocolloids, 31: 166–171.
- Mokarram M., Saber A., Sheykhi V. (2020). Effects of heavy metal contamination on river water quality due to release of industrial effluents. J. Cleaner Prod., 277: 123380.
- Mokhtar M.B., Aris A.Z., Munusamy V., Praveena S.M. (2009). Assessment level of heavy metals in Penaeus monodon and Oreochromis spp in selected aquaculture ponds of high densities development area. Euro. J. Sci. Res., 30: 348–360.
- Mou H., Huang X., Deng Q., Lei Q., Luo H., Liang J., Zhang X., Zhang T., Yao X., Zhang L. (2021). Preparation of graphene oxide-modified palygorskite nanocomposites for high-efficient removal of Co(II) from wastewater. Environ. Sci. Pollut. Res., 28: 1919–1932.
- Mukherjee S., Chatterjee N., Sircar A., Maikap S., Singh A., Acharyya S., Paul S. (2023). A comparative analysis of heavy metal effects on medicinal plants. Appl. Biochem. Biotechnol., 195: 2483–2518.
- Muralisankar T., Saravana-Bhavan P., Radhakrishnan S., Seenivasan C., Srinivasan V., Santhanam P. (2015). Effects of dietary zinc on the growth, digestive enzyme activities, muscle biochemical compositions, and antioxidant status of the giant freshwater prawn Macrobrachium rosenbergii. Aquaculture, 448: 98–104.
- Mziray P., Kimirei I.A. (2016). Bioaccumulation of heavy metals in marine fishes (Siganus sutor, Lethrinus harak, and Rastrelliger kanagurta) from Dar es Salaam Tanzania. Reg. Stud. Mar. Sci., 7: 72–80.
- Nan-Xuyang (2009). Effects of heavy metals Cu, Zn and Cd on toxicity effect and leukocyte phagocytosis of loach. Shaanxi Agri. Sci., 2: 40–53.
- NHMRC and NRMMC (2011). Australian drinking water guidelines paper 6 national water quality management strategy. National Health and Medical Research Council, National Resource Management Ministerial Council, Commonwealth of Australia, March, 1244.
- Nyamete F., Chacha M., Msagati T., Raymond J. (2022). Bioaccumulation and distribution pattern of heavy metals in aquaculture systems found in Arusha and Morogoro regions of Tanzania. Int. J. Environ. Analytical Chem., 102: 5961–5978.
- O’Brien T.J., Ceryak S., Patierno S.R. (2003). Complexities of chromium carcinogenesis: Role of cellular response, repair and recovery mechanisms. Mutat. Res./Fundamental Mol. Mech. Mutagen., 533: 3–36.
- Ogemdi I.K. (2019). Heavy metal concentration of aphrodisiac herbs locally sold in the south-eastern region of Nigeria. Pharm. Sci. Technol., 3: 22.
- Ogendi G.M., Maina G.M., Mbuthia J.W., Koech H.K., Ratemo C.M., Koskey J.C. (2014). Heavy metal concentrations in water, sediments and common carp (Cyprinus carpio) fish species from Lake Naivasha, Kenya. Res. J. Environ. Earth Sci., 6: 416–423.
- Okoye P.A.C., Ajiwe V.I.E., Okeke O.R., Ujah I.I., Asalu U.B., Okeke D.O. (2015). Estimation of heavy metal levels in the muscle, gizzard, liver and kidney of broiler, layer and local (cockerel) chickens raised within Awka Metropolis and its environs, Anambra State, South Eastern Nigeria. J. Environ. Prot., 06: 609–613.
- Olaifa F.E., Ayodele I. (2004). Presence of hydrocarbons and heavy metals in some fish species in the cross river, Nigeria. Afr. J. Livest. Extens., 3.
- Olaifa F.E., Omekam A.J. (2014). Studies on phytoremediation of copper using Pteridium aquilinum (Bracken Fern) in the presence of biostimulants and bioassay using Clarias gariepinus juveniles. Int. J. Phytoremediation, 16: 219–234.
- Olaifa F.E., Fabusoro A.A. (2017). Uptake of zinc by Pteridium aquilinum (bracken fern) and response of Clarias gariepinus juveniles during chronic and sub lethal exposure. Nigerian J. Physiol. Sci: Official Pub. Physiol. Society of Nigeria, 32: 37–46.
- Olaifa F., Olaifa A., Onwude T. (2010). Lethal and sub-lethal effects of copper to the African catfish (Clarias gariepinus) juveniles. Afr. J. Biomed. Res., 7: 2.
- Ololade I.O., Ogini O. (2009). Behavioural and hematological effects of zinc on African Catfish, Clarias gariepinus. Int. J. Fish. Aquac., 1: 22–27.
- Olsson P.E., Kling P., Hogstrand C. (1998). Mechanisms of heavy metal accumulation and toxicity in fish. Metal Metab. Aquat. Environ., pp. 321–350.
- Onyekachi O.E., Iwuozor K.O. (2019). Mechanical and water absorption properties of polymeric compounds. Am. J. Mech. Mat. Eng., 3: 36–46.
- Ouyang W., Wang Y., Lin C., He M., Hao F., Liu H., Zhu W. (2018). Heavy metal loss from agricultural watershed to aquatic system: A scientometrics review. Sci. Total Environ., 637–638: 208–220.
- Páez-Osuna F., Ruiz-Fernández C. (1995). Trace metals in the Mexican shrimp Penaeus vannamei from estuarine and marine environments. Environ. Pollut., 87: 243–247.
- Pandey G., Madhuri S. (2014). Heavy metals causing toxicity in animals and fishes. Res. J. Animal, Vet. Fish. Sci., 2: 17–23.
- Pandion K., Khalith S.B.M., Ravindran B., Chandrasekaran M., Rajagopal R., Alfarhan A., Chang S.W., Ayyamperumal R., Mukherjee A., Arunachalam K.D. (2022). Potential health risk caused by heavy metal associated with seafood consumption around coastal area. Environ. Pollut., 294: 118553.
- Pourang N., Amini G. (2001). Distribution of trace elements in tissues of two shrimp species from Persian Gulf and effects of storage temperature on elements transportation. Water Air Soil Pollut., 129: 229–243.
- Pourang N., Dennis J.H. (2005). Distribution of trace elements in tissues of two shrimp species from the Persian Gulf and roles of metallothionein in their redistribution. Environ. Int., 31: 325–341.
- Qian D., Xu C., Chen C., Qin J.G., Chen L., Li E. (2020). Toxic effect of chronic waterborne copper exposure on growth, immunity, anti-oxidative capacity and gut microbiota of Pacific white shrimp Litopenaeus vannamei. Fish Shellfish Immunol., 100: 445–455.
- Ra W., Joon H., Kim Y., Yun T., Soh B., Yeob S., Joo Y., Lee K. (2023). Heavy metal concentration according to shrimp species and organ specificity: Monitoring and human risk assessment. Mar. Pollut. Bull., 197: 115761.
- Raeeszadeh M., Khoei A.J., Parhizkar S., Rad F.T., Salimi B. (2023). Assessment of some heavy metals and their relationship with oxidative stress and immunological parameters in aquatic animal species. Biol. Trace Elem. Res., 201: 4547–4557.
- Rahman M., Molla A., Arafat S. (2010). Status of pollution around Dhaka export processing zone and its impact on Bangshi River water, Bangladesh. Bangladesh. J. Nat. Sci. Sustain. Technol., 4: 91–110.
- Rai P.K. (2009 a). Heavy metal phytoremediation from aquatic ecosystems with special reference to macrophytes. Critical Rev. Environ. Sci. Technol., 39: 697–753.
- Rai P.K. (2009 b). Heavy metals in water, sediments and wetland plants in an aquatic ecosystem of tropical industrial region, India. Environ. Monit Assess., 158: 433–457.
- Rao M.S., Rajitha B., Pavitra E., Anjaneyulu N. (2008). Changes of copper and protein profiles in hepatopancreas and hemolymph tissues during different molt stages of white shrimp, Litopenaeus vannamei (Boone, 1931). Biotechnol, 7: 153–156.
- Rashed M.N. (2001). Monitoring of environmental heavy metals in fish from nasser lake. Environ. Int., 27: 27–33.
- Rohani M.F., Bristy A.A., Hasan J., Hossain M.K., Shahjahan M. (2022). Dietary zinc in association with vitamin E promotes growth performance of Nile Tilapia. Biol. Trace Elem. Res., 200: 4150–4159.
- Roosa S., Prygiel E., Lesven L., Wattiez R., Gillan D., Ferrari B.J., Criquet J.B.G. (2016). On the bioavailability of trace metals in surface sediments: a combined geochemical and biological approach. Environ. Sci. Pollut. Res., 23: 10679–10692.
- Rosado D., Usero J., Morillo J. (2016). Assessment of heavy metals bioavailability and toxicity toward Vibrio fischeri in sediment of the Huelva estuary. Chemosphere, 153: 10–17.
- Salvaggio A., Marino F., Albano M., Pecoraro R., Camiolo G., Tibullo D., Bramanti V., Lombardo B.M., Saccone S., Mazzei V., Brundo M.V. (2016). Toxic effects of zinc chloride on the bone development in Danio rerio (Hamilton, 1822). Front. Physiol., 7: 1–6.
- Sankhla M.S., Kumar R., Prasad L. (2020). Variation of chromium concentration in Yamuna River (Delhi) water due to change in temperature and humidity. J. Seybold Rep., 15: 293–299.
- Santos D.B., Barbieri E., Bondioli A.C.V., De Melo C.B. (2014). Effects of lead in white shrimp (Litopenaeus schmitti) metabolism regarding salinity. Mundo Da Saude, 38: 16–23.
- Sarkar M., Majumdar P. (2011). Application of response surface methodology for optimization of heavy metal biosorption using surfactant modified chitosan bead. Chem. Eng. J., 175: 376–387.
- Sarkar M., Islam J.B., Akter S. (2016). Pollution and ecological risk assessment for the environmentally impacted Turag River, Bangladesh. J. Mater. Environ. Sci., 7: 2295–2304.
- Sarkar T., Alam M.M., Parvin N., Fardous Z., Chowdhury A.Z., Hossain S., Haque M.E., Biswas N. (2016 a). Assessment of heavy metals contamination and human health risk in shrimp collected from different farms and rivers at Khulna-Satkhira region, Bangladesh. Toxicol. Rep., 3: 346–350.
- Sarkar T., Alam M.M., Parvin N., Fardous Z., Chowdhury A.Z., Hossain S., Haque M.E., Biswas N. (2016 b). Assessment of heavy metals contamination and human health risk in shrimp collected from different farms and rivers at Khulna-Satkhira region, Bangladesh. Toxicol. Rep., 3: 346–350.
- Sarkar M.M., Rohani M.F., Hossain M.A.R., Shahjahan M. (2022). Evaluation of heavy metal contamination in some selected commercial fish feeds used in Bangladesh. Biol. Trace Elem. Res., 200: 844–854.
- Sarker M.J., Sultana S., Hossain S., Yu J., Arai T., Hossain M.B. (2023 a). Heavy metals in wild and cultured shrimp, supplied feeds, and their habitats: Assessing public health risk. Heliyon, 9: 19455.
- Sarker M.J., Sultana S., Hossain S., Yu J., Arai T., Hossain M.B. (2023 b). Heavy metals in wild and cultured shrimp, supplied feeds, and their habitats: Assessing public health risk. Heliyon, 9: 19455. Senger M.R., Rosemberg D.B., Rico E.P., de Bem Arizi M., Dias R.D.,
- Bogo M.R., Bonan C.D. (2006). In vitro effect of zinc and cadmium on acetylcholinesterase and ectonucleotidase activities in zebrafish (Danio rerio) brain. Toxicol. Vitro, 20: 954–958. Serviere-Zaragoza E., Lluch-Cota S.E., Mazariegos-Villarreal A.,
- Balart E.F., Valencia-Valdez H., Méndez-Rodríguez L.C. (2021). Cadmium, lead, copper, zinc, and iron concentration patterns in three marine fish species from two different mining sites inside the Gulf of California, Mexico. Int. J. Environ. Res. Public Health, 18: 1–18.
- Sevcikova M., Modra H., Blahov J., Dobsikova R., Plhalova L., Zitka O., Hynek D., Kizek R., Skoric M., Svobodova Z. (2016). Biochemical, haematological and oxidative stress responses of common carp (Cyprinus carpio L.) after sub-chronic exposure to copper. Vet. Med., 61: 35–50.
- Shaheen T., Akhtar T. (2012). Assessment of chromium toxicity in Cyprinus carpio through hematological and biochemical blood markers. Turkish J. Zool., 36: 682–690.
- Shahjahan M., Islam S.M., Bablee A.L., Siddik M.A.B., Fotedar R. (2021). Sumithion usage in aquaculture: benefit or forfeit? Rev. Aquac., 13: 2092–2111.
- Shi W., Guan X., Han Y., Guo C., Rong J., Su W., Zha S., Wang Y., Liu G. (2018). Waterborne Cd2+ weakens the immune responses of blood clam through impacting Ca2+ signaling and Ca2+ related apoptosis pathways. Fish Shellfish Immunol., 77: 208–213.
- Si L.F., Wang C.C., Guo S.N., Zheng J.L., Xia H. (2019). The lagged effects of environmentally relevant zinc on non-specific immunity in zebrafish. Chemosphere, 214: 85–93.
- Singh V., Singh J., Mishra V. (2021). Development of a cost-effective, recyclable and viable metal ion doped adsorbent for simultaneous adsorption and reduction of toxic Cr (VI) ions. J. Environ. Chem. Eng., 9: 105124.
- Singh V., Singh J., Singh N., Rai S.N., Verma, M.K., Verma M., Singh V., Chivate M.S., Bilal M., Mishra V. (2022). Simultaneous removal of ternary heavy metal ions by a newly isolated Microbacterium paraoxydans strain VSVM IIT(BHU) from coal washery effluent. BioMetals., 1–17.
- Smith K.L., Guentzel J.L. (2010). Mercury concentrations and omega-3 fatty acids in fish and shrimp: Preferential consumption for maximum health benefits. Mar. Pollut. Bull., 60: 1615–1618.
- Soegianto A., Irawan B., Usman N. (2013). Effects of sublethal copper concentrations on gills of white shrimp (Litopenaeus vannamei, Boone 1931). Bull. Environ. Contam. Toxicol, 91: 630–634.
- Song Y.F., Hogstrand C., Wei C.C., Wu K., Pan Y.X., Luo Z. (2017). Endoplasmic reticulum (ER) stress and cAMP/PKA pathway mediated Zn-induced hepatic lipolysis. Environ. Pollut., 228: 256–264.
- Suchana S.A., Ahmed M.S., Islam S.M.M., Rahman M.L., Rohani M.F., Ferdusi T., Ahmmad A.K.S., Fatema M.K., Badruzzaman M., Shahjahan M. (2021). Chromium exposure causes structural aberrations of erythrocytes, gills, liver, kidney, and genetic damage in striped catfish Pangasianodon hypophthalmus. Biol. Trace Elem. Res., 199: 3869–3885.
- Tavabe K.R., Abkenar B.P., Rafiee G., Frinsko M. (2019). Effects of chronic lead and cadmium exposure on the oriental river prawn (Macrobrachium nipponense) in laboratory conditions. Comp. Biochem. Physiolo. Part - C: Toxicol. Pharm., 221: 21–28.
- Tao W. (2012). Analysis of amino acid composition in tin meat extracted from citric acid and its extract. Food Machinery, 28: 77–81.
- Teh C.Y., Budiman P.M., Shak K.P.Y., Wu T.Y. (2016). Recent advancement of coagulation-flocculation and its application in wastewater treatment. Ind. Eng. Chem. Res., 55: 4363–4389.
- Triebskorn R., Telcean I., Casper H., Farkas A., Sandu C., Stan G., Colărescu O., Dori T.K.H. (2008). Monitoring pollution in River Mureş, Romania, part II: metal accumulation and histopathology in fish. Environ. Monit Assess, 141: 177–188.
- Tsai W.C., Ibarra-Buscano S., Kan C.C., Futalan C.M., Dalida M.L.P., Wan M.W. (2016). Removal of copper, nickel, lead, and zinc using chitosan-coated montmorillonite beads in single- and multi-metal system. Desalinat. Water Treat., 57: 9799–9812.
- US EPA (2023). National Primary Drinking Water Regulations. Drinking Water Contaminants, 141–142.
- Verma N., Kumar R., Singh Sankhla M. (2020). Green filter development: An innovative technique for removal of heavy metals from water. ARC J. Forensic Sci., 5: 7–12.
- Wang H.Y., Shu W.S. (2005). Research status and prospect of heavy metal pollution ecology. J. Acta Ecol. Sin., 3: 596–605.
- Wang Z., Tian C., Yu R. (1998). Marine shellfish culture technology. Qingdao Ocean University Press, Shandong.
- Wang L.K., Chen J.P., Hung Y.T., Shammas N.K. (2011). Membrane and desalination technologies. Membrane Desalinat. Technol., 13.
- Wang C., Zheng S.S., Wang P.F., Qian J. (2014). Effects of vegetations on the removal of contaminants in aquatic environments: A review. J. Hydrodynamics, 26: 497–511.
- Wang X., Liu Y., Zheng J. (2016). Removal of As(III) and As(V) from water by chitosan and chitosan derivatives: a review. Environ. Sci. Pollut. Res., 23: 13789–13801.
- Wang H., Shi Y., Wang L., Liu S., Wu S., Yang Y., Feyereisen R., Wu Y. (2018). CYP6AE gene cluster knockout in Helicoverpa armigera reveals role in detoxification of phytochemicals and insecticides. Nat. Comm., 9: 4820.
- Wang R.F., Zhu L.M., Zhang J., An X.P., Yang Y.P., Song M., Zhang L. (2020). Developmental toxicity of copper in marine medaka (Oryzias melastigma) embryos and larvae. Chemosphere, 247: 125923.
- Wang L., Feng J., Wang G., Guan T., Zhu C., Li J., Wang H. (2021). Effects of cadmium on antioxidant and non-specific immunity of Macrobrachium nipponense. Ecotoxicol. Environ. Saf., 224: 112651.
- Wang L., Wu N., Zhang Y., Wang G., Pu S., Guan T., Zhu C., Wang H., Li J. (2022). Effects of copper on non-specific immunity and anti-oxidant in the oriental river prawn (Macrobrachium nipponense). Ecotoxicol. Environ. Saf., 236: 113465.
- Wang Q., Tian Y., Wang J., Li J.Y., He W., Craig N.J. (2023). Assessing pathways of heavy metal accumulation in aquaculture shrimp and their introductions into the pond environment based on a dynamic model and mass balance principle. Sci. Total Environ., 881: 163164.
- Wenping X., Shunfeng Q., Lisha M. (2017). Analysis of organochlorine pesticides and heavy metal residues in the environment of freshwater aquaculture in Hainan. Environ. Chem., 36: 1407–1416.
- Witeska M., Sarnowski P., Ługowska K., Kowal E. (2014). The effects of cadmium and copper on embryonic and larval development of ide Leuciscus idus L. Fish Physiol. Biochem. 40: 151–163.
- Wołowiec M., Komorowska-Kaufman M., Pruss A., Rzepa G., Bajda T. (2019). Removal of heavy metals and metalloids from water using drinking water treatment residuals as adsorbents: A review. Minerals, 9: 8.
- World Health Organization (2017). Guidelines for Drinking-Water Quality, 4th ed. World Health Organization, Geneva.
- Wu J.P., Chen H.C. (2004). Effects of cadmium and zinc on oxygen consumption, ammonium excretion, and osmoregulation of white shrimp (Litopenaeus vannamei). Chemosphere, 57: 1591–1598.
- Wu J.P., Chen H.C. (2005). Metallothionein induction and heavy metal accumulation in white shrimp Litopenaeus vannamei exposed to cadmium and zinc. Comp. Biochem. Physiol. Part C: Toxicol. Pharmacol., 140: 383–394.
- Wu Y., Zhao H., Hou L. (1990). Effects of heavy metals on embryos and larvae of flat fish Paralichthys olivaceus. Oceanologia et Limnologia Sinica/Haiyang Yu Huzhao. Qingdao Oceanol. Limnol. Sin., 21: 386–392.
- Wu J.P., Chen H.C., Huang D.J. (2008). Histopathological and biochemical evidence of hepatopancreatic toxicity caused by cadmium and zinc in the white shrimp, Litopenaeus vannamei. Chemosphere, 73: 1019–1026.
- Wu J.P., Chen H.C., Huang D.J. (2009). Histopathological alterations in gills of white shrimp, Litopenaeus vannamei (Boone) after acute exposure to cadmium and zinc. Bull. Environ. Contam. Toxicol., 82: 90–95.
- Xu L., Xu X., Wu D. (2019). Initial dissolved oxygen-adjusted electrochemical generation of sulfate green rust for cadmium removal using a closed-atmosphere Fe–electrocoagulation system. Chem. Eng. J., 359: 1411–1418.
- Xu X., Huo Q., Dong Y., Zhang S., Yang Z., Xian J., Yang Y., Cheng Z. (2019). Bioaccumulation and health risk assessment of trace metals in fish from freshwater polyculture ponds in Chengdu, China. Environ. Sci. Pollut. Res., 26: 33466–33477.
- Yaghmaeian K., Khosravi M.R., Nasseri S., Mahvi A.H., Alimohammadi M., Nazmara S. (2015). Removal of inorganic mercury from aquatic environments by multi-walled carbon nanotubes. J. Environ. Health Sci. Eng., 13: 1–9.
- Yang R., Li H., Huang M., Yang H., Li A. (2016). A review on chitosan-based flocculants and their applications in water treatment. Water Res., 95: 59–89.
- Yang F., Zhang H., Xie S., Wei C., Yang X. (2023). Concentrations of heavy metals in water, sediments and aquatic organisms from a closed realgar mine. Environ. Sci. Pollut. Res., 30: 4959–4971.
- Yılmaz A.B., Yılmaz L. (2007). Influences of sex and seasons on levels of heavy metals in tissues of green tiger shrimp (Penaeus semi-sulcatus de Hann, 1844). Food Chem., 101: 1664–1669.
- Yılmaz A.B., Yanar A., Alkan E.N. (2017). Review of heavy metal accumulation on aquatic environment in Northern East Mediterrenean Sea part I: Some essential metals. Rev. Environ. Health, 32: 119–163.
- Yohana M.A., Ray G.W., Yang Q., Beiping T., Shuyan C., Junming D. (2023). Effect of corn gluten meal on the replacement of soybean meal on the survival, biochemical and metabolic responses, and disease resistance of Pacific white shrimp (Litopenaeus vannamei). Ann. Anim. Sci., 24: 575–591.
- Yu X., Hu Z., Cheng D., Liu X., Xiao S., Yu X. (2011). The absorbency and adsorption of the superabsorbent resin in salt solutions of heavy metal ions. J. Hubei Univ. (Nat. Sci. Ed.), 33: 528–531.
- Yu B., Wang X., Dong K.F., Xiao G., Ma D. (2020). Heavy metal concentrations in aquatic organisms (fishes, shrimp and crabs) and health risk assessment in China. Mar. Pollut. Bull., 159: 111505.
- Yuan S.S., Lv Z.M., Zhu A.Y., Zheng J.L., Wu C.W. (2017). Negative effect of chronic cadmium exposure on growth, histology, ultra-structure, antioxidant and innate immune responses in the liver of zebrafish: Preventive role of blue light emitting diodes. Ecotoxicol. Environ. Saf., 139: 18–26.
- Yuan Y., Jin M., Xiong J., Zhou Q. (2019). Effects of dietary dosage forms of copper supplementation on growth, antioxidant capacity, innate immunity enzyme activities and gene expressions for juvenile Litopenaeus vannamei. Fish Shellfish Immunol., 84: 1059–1067.
- Zhang C., Li F., Xiang J. (2014). Acute effects of cadmium and copper on survival, oxygen consumption, ammonia-N excretion, and metal accumulation in juvenile Exopalaemon carinicauda. Ecotoxicol. Environ. Saf., 104: 209–214.
- Zhang H., Cao H., Meng Y., Jin G., Zhu M. (2012). The toxicity of cadmium (Cd2+) towards embryos and pro-larva of soldatov’s cat-fish (Silurus soldatovi). Ecotoxicol. Environ. Saf., 80: 258–265.
- Zhang C., Yu K., Li F., Xiang J. (2017). Acute toxic effects of zinc and mercury on survival, standard metabolism, and metal accumulation in juvenile ridgetail white prawn, Exopalaemon carinicauda. Ecotoxicol. Environ. Saf., 145: 549–556.
- Zhang H., Zhai Y., Yao L., Jiang Y., Li F. (2017). Comparative transcriptomics reveals genes involved in metabolic and immune pathways in the digestive gland of scallop Chlamys farreri following cadmium exposure. Chinese J. Oceanol. Limnol., 35: 603–612.
- Zhang C., Jin Y., Yu Y., Xiang J., Li F. (2021). Cadmium-induced oxidative stress, metabolic dysfunction and metal bioaccumulation in adult palaemonid shrimp Palaemon macrodactylus (Rathbun, 1902). Ecotoxicol. Environ. Saf., 208: 111591.
- Zhang T., Wang W., Zhao Y., Bai H., Wen T., Kang S., Song G., Song S., Komarneni S. (2021). Removal of heavy metals and dyes by clay-based adsorbents: From natural clays to 1D and 2D nano-composites. Chem. Eng. J., 420: 127574.
- Zhao W., Chen X., Fei Z. (2009). Preliminary study on the enrichment ability of heavy metals in Yancheng beach shellfish and its different tissues and organs. J. Shanghai Jiao Tong Univ., 27: 76–79.
- Zheng D., Feeney G.P., Kille P., Hogstrand C. (2008). Regulation of ZIP and ZnT zinc transporters in zebrafish gill: Zinc repression of ZIP10 transcription by an intronic MRE cluster. Physiol. Genom., 34: 205–214.
- Zheng J.L., Luo Z., Zhu Q.L., Hu W., Zhuo M.Q., Pan Y.X., Song Y.F., Chen Q.L. (2015). Different effect of dietborne and waterborne Zn exposure on lipid deposition and metabolism in juvenile yellow catfish Pelteobagrus fulvidraco. Aquatic Toxicol., 159: 90–98.
- Zhi-guo D., Cheng L.I.X., Yan H.M.X. (2010). Enrichment characteristics and contamination evaluation of heavy metal in five tissues of Meretrix meretrix cultured from Haizhou Bay. Food Sci., 31: 2008–2011.
- Zhul-quarnain A., Ogemdi I.K., Modupe I., Gold E., Chidubem E.E. (2018). Adsorption of malachite green dye using orange peel. J. Biomater., 2: 31–40.