94
Views
2
CrossRef citations to date
0
Altmetric
Research Articles

Toxicity of titanium nano-oxide nanoparticles (TiO2) on the pacific oyster, Crassostrea gigas: immunity and antioxidant defence

&
Pages 237-246 | Received 07 Nov 2020, Accepted 09 Dec 2020, Published online: 13 Jul 2021

References

  • Abo-Al-Ela, H.G., and Faggio, C., 2020. MicroRNA-mediated stress response in bivalve species. Ecotoxicology and environmental safety, 208, 111442.
  • Agrawal, S., and Rathore, P., 2014. Nanotechnology pros and cons to agriculture: a review. International journal of current microbiology and applied sciences, 3 (3), 43–55.
  • Ahmad, I., et al., 2011. Immunosuppression in the infaunal bivalve Scrobicularia plana environmentally exposed to mercury and association with its accumulation. Chemosphere, 82 (11), 1541–1546.
  • Aliko, V., et al., 2019. Drink and sleep like a fish': goldfish as a behavior model to study pharmaceutical effects in freshwater ecosystems. Journal of biological research-bollettino della Società Italiana di Biologia Sperimentale, 92 (1), 1–9.
  • Asghar, M.S., et al., 2015. Toxicity of zinc nanoparticles in fish: a critical review. Journal of biodiversity and environmental sciences, 7 (1), 431–439.
  • Azimi, A., et al., 2012. Heavy metals (Hg, Cd, Pb and Cu) bioaccumulation in the oyster Crassostrea gigas of Imam Khomeini Port. Journal of marine science and technology, 10 (3), 23–32.
  • Baker, T.J., Tyler, C.R., and Galloway, T.S., 2014. Impacts of metal and metal oxide nanoparticles on marine organisms. Environmental pollution, 186, 257–271.
  • Barmo, C., et al., 2013. In vivo effects of n-TiO2 on digestive gland and immune function of the marine bivalve Mytilus galloprovincialis. Aquatic toxicology, 132, 9–18.
  • Baun, A., et al., 2008. Ecotoxicity of engineered nanoparticles to aquatic invertebrates: a brief review and recommendations for future toxicity testing. Ecotoxicology (London, England)), 17 (5), 387–395.
  • Blahova, J., et al., 2020. Embryotoxicity of atrazine and its degradation products to early life stages of zebrafish (Danio rerio). Environmental toxicology and pharmacology, 77, 103370.
  • Burgos-Aceves, M.A., Abo-Al-Ela, H.G., and Faggio, C., 2020. Physiological and metabolic approach of plastic additives effects: immune cells responses. Journal of hazardous materials, 404, 124114.
  • Capillo, G., et al., 2018. Assessment of electrolytes and metals profile of the Faro Lake (Capo Peloro Lagoon, Sicily, Italy) and its impact on Mytilus galloprovincialis. Chemistry & biodiversity, 15 (5), 1800044.
  • Chen, X., and Mao, S.S., 2007. Titanium dioxide nanomaterials: synthesis, properties, modifications, and applications. Chemical reviews, 107 (7), 2891–2959.
  • Cheraghi, M., et al., 2013. Assessment of oyster Crassostrea gigas as biomonitor agent for some metals (Pb and Cu) from Musa Estuary Persian Gulf). Life science journal, 10 (6s), 1–7.
  • Chromcova, L., et al., 2016. NeemAzal T/S–toxicity to early-life stages of common carp (Cyprinus carpio L.). Veterinární medicína, 60 (No. 1), 23–30.
  • de Boissel, P.G.J., et al., 2017. Functional and molecular responses of the blue mussel Mytilus edulis' hemocytes exposed to cadmium-An in vitro model and transcriptomic approach. Fish & shellfish immunology, 67, 575–585.
  • Dinamani, P., 1971. Occurrence of the Japanese oyster, Crassostrea gigas (Thunberg), in northland, New Zealand. New Zealand journal of marine and freshwater research, 5 (2), 352–357.
  • Dovzhenko, N.V., et al., 2005. Cadmium-induced oxidative stress in the bivalve mollusk Modiolus modiolus. Russian journal of marine biology, 31 (5), 309–313.
  • Dréno, B., et al., 2019. Safety of titanium dioxide nanoparticles in cosmetics. Journal of the European academy of dermatology and venereology, 33 (S7), 34–46.
  • Faggio, C., Tsarpali, V., and Dailianis, S., 2018. Mussel digestive gland as a model tissue for assessing xenobiotics: an overview. Science of the total environment, 636, 220–229.
  • Fiorino, E., et al., 2018. Effects of glyphosate on early life stages: comparison between Cyprinus carpio and Danio rerio. Environmental science and pollution research, 25 (9), 8542–8549.
  • Forouhar Vajargah, M., et al., 2019. Effect of long‐term exposure of silver nanoparticles on growth indices, hematological and biochemical parameters and gonad histology of male goldfish (Carassius auratus gibelio). Microscopy research and technique, 82 (7), 1224–1230.
  • Forouhar Vajargah, M., et al., 2018. Histopathological lesions and toxicity in common carp (Cyprinus carpio L. 1758) induced by copper nanoparticles. Microscopy research and technique, 81 (7), 724–729.
  • Forouhar Vajargah, M.F., et al., 2020. Effects of copper oxide nanoparticles (CuO-NPs) on parturition time, survival rate and reproductive success of guppy fish, Poecilia reticulata. Journal of cluster science, 31 (2), 499–506.
  • Freitas, R., et al., 2019. Biochemical and physiological responses induced in Mytilus galloprovincialis after a chronic exposure to salicylic acid. Aquatic toxicology, 214, 105258.
  • Freitas, R., et al., 2020a. Combined effects of salinity changes and salicylic acid exposure in Mytilus galloprovincialis. Science of the total environment, 715, 136804.
  • Freitas, R., et al., 2020b. Toxic impacts induced by sodium lauryl sulfate in Mytilus galloprovincialis. Comparative biochemistry and physiology - part B: biochemistry & molecular biology, 242, 110656.
  • Frouin, H., et al., 2007. Physiological effects of polycyclic aromatic hydrocarbons on soft-shell clam Mya arenaria. Aquatic toxicology, 82 (2), 120–134.
  • Gajbhiye, S., and Sakharwade, S., 2016. Silver nanoparticles in cosmetics. Journal of cosmetics, dermatological sciences and applications, 06 (01), 48–53.
  • Géret, F., et al., 2002. Influence of metal exposure on metallothionein synthesis and lipid peroxidation in two bivalve mollusks: the oyster (Crassostrea gigas) and the mussel (Mytilus edulis). Aquatic living resources, 15 (1), 61–66.
  • Giannapas, M., Karnis, L., and Dailianis, S., 2012. Generation of free radicals in haemocytes of mussels after exposure to low molecular weight PAH components: immune activation, oxidative and genotoxic effects. Comparative biochemistry and physiology. toxicology & pharmacology: CBP, 155 (2), 182–189.
  • Gomes, T., et al., 2013. Genotoxicity of copper oxide and silver nanoparticles in the mussel Mytilus galloprovincialis. Marine environmental research, 84, 51–59.
  • Gomes, T., et al., 2012. Accumulation and toxicity of copper oxide nanoparticles in the digestive gland of Mytilus galloprovincialis. Aquatic toxicology, 118, 72–79.
  • Gomes, T., et al., 2014. Effects of silver nanoparticles exposure in the mussel Mytilus galloprovincialis. Marine environmental research, 101, 208–214.
  • Gomes, T., et al., 2011. Effects of copper nanoparticles exposure in the mussel Mytilus galloprovincialis. ).Environmental science & technology, 45 (21), 9356–9362.
  • Gottschalk, F., Sun, T., and Nowack, B., 2013. Environmental concentrations of engineered nanomaterials: review of modeling and analytical studies. Environmental pollution (Barking, Essex: 1987), 181, 287–300.
  • Guan, X., et al., 2018. Neurotoxic impact of acute TiO2 nanoparticle exposure on a benthic marine bivalve mollusk, Tegillarca granosa. Aquatic toxicology (Amsterdam, Netherlands), 200, 241–246.
  • Hannam, M.L., et al., 2010. Effects of the model PAH phenanthrene on immune function and oxidative stress in the haemolymph of the temperate scallop Pecten maximus. Chemosphere, 78 (7), 779–784.
  • Hannam, M.L., et al., 2009. Immune function in the Arctic Scallop, Chlamys islandica, following dispersed oil exposure. Aquatic toxicology, 92 (3), 187–194.
  • Hidouri, S., et al., 2017. Effects of chronic exposure to silver nanoparticles on Ruditapes decussatus gills using biochemical markers. Water, air, & soil pollution, 228 (2), 79.
  • His, E., et al., 1999. A comparison between oyster (Crassostrea gigas) and sea urchin (Paracentrotus lividus) larval bioassays for toxicological studies. Water research, 33 (7), 1706–1718.
  • Howard, A.G., and Nickless, G., 1977. Heavy metal complexation in polluted molluscs II. Oysters (Ostrea edulis and Crassostrea gigas). Chemico-biological interactions, 17 (3), 257–263.
  • Huang, X., et al., 2018a. Impact of zinc oxide nanoparticles and ocean acidification on antioxidant responses of Mytilus coruscus. Chemosphere, 196, 182–195.
  • Huang, X., et al., 2018b. Oxidative stress induced by titanium dioxide nanoparticles increases under seawater acidification in the thick shell mussel Mytilus coruscus. Marine environmental research, 137, 49–59.
  • Jovanović, B., and Palić, D., 2012. Immunotoxicology of non-functionalized engineered nanoparticles in aquatic organisms with special emphasis on fish—review of current knowledge, gap identification, and call for further research. Aquatic toxicology (Amsterdam, Netherlands), 118–119, 141–151.
  • Kalantzi, I., et al., Tsapakis, M., 2019. Ecotoxicity of silver nanoparticles on plankton organisms: a review. Journal of nanoparticle research, 21 (3), 65.
  • Katsumiti, A., et al., 2015. Mechanisms of toxicity of Ag nanoparticles in comparison to bulk and ionic Ag on mussel hemocytes and gill cells. PLoS One, 10 (6), e0129039
  • Keller, A.A., et al., 2010. Stability and aggregation of metal oxide nanoparticles in natural aqueous matrices. Environmental science & technology, 44 (6), 1962–1967.
  • Kengar, M.D., et al., 2019. A review on nanoparticles and its application. Asian journal of pharmacy and technology, 9 (2), 115–124.
  • Khondee, P., et al., 2016. Histopathological effect and stress response of mantle proteome following TBT exposure in the Hooded oyster Saccostrea cucullata. Environmental pollution, 218, 855–862.
  • Lee, C.L., Chen, H.Y., and Chuang, M.Y., 1996. Use of oyster, Crassostrea gigas, and ambient water to assess metal pollution status of the charting coastal area, Taiwan, after the 1986 green oyster incident. Chemosphere, 33 (12), 2505–2532.
  • Leite, C., et al., 2020. Toxic impacts of rutile titanium oxide in Mytilus galloprovincialis exposed to warming conditions. Chemosphere, 252, 126563.
  • Li, F., et al., 2015. Toxicity of nano-TiO2 on algae and the site of reactive oxygen species production. Aquatic toxicology, 158, 1–13.
  • Liu, H.H., and Cohen, Y., 2014. Multimedia environmental distribution of engineered nanomaterials. Environmental science & technology, 48 (6), 3281–3292.
  • Liu, S., et al., 2016. Ocean acidification weakens the immune response of blood clam through hampering the NF-kappa β and toll-like receptor pathways. Fish & shellfish immunology, 54, 322–327.
  • Mackenzie, C.L., et al., 2014. Future oceanic warming and acidification alter immune response and disease status in a commercial shellfish species, Mytilus edulis L. PLoS One, 9 (6), e99712.
  • Matozzo, V., et al., 2001. Effects of copper and cadmium exposure on functional responses of hemocytes in the clam, Tapes philippinarum. Archives of environmental contamination and toxicology, 41 (2), 163–170.
  • Matozzo, V., et al., 2009. First evidence of altered immune responses and resistance to air exposure in the clam Chamelea gallina exposed to benzo(a)pyrene. Archives of environmental contamination and toxicology, 56 (3), 479–488.
  • Matozzo, V., et al., 2016. Pinna nobilis: a big bivalve with big haemocytes? Fish & shellfish immunology, 55, 529–534.
  • Matozzo, V., et al., 2008. Immunotoxicity of the xenoestrogen 4-nonylphenol to the cockle Cerastoderma glaucum. Marine pollution bulletin, 57 (6–12), 453–459.
  • Matranga, V., and Corsi, I., 2012. Toxic effects of engineered nanoparticles in the marine environment: model organisms and molecular approaches. Marine environmental research, 76, 32–40.
  • Medina, C., et al., 2007. Nanoparticles: pharmacological and toxicological significance. British journal of pharmacology, 150 (5), 552–558.
  • Mohsenpour, R., et al., 2020. In vitro effects of silver nanoparticles on gills morphology of female Guppy (Poecilia reticulate) after a short‐term exposure. Microscopy research and technique, 83 (12), 1552–1557.
  • Nicholson, S., 2003. Lysosomal membrane stability, phagocytosis and tolerance to emersion in the mussel Perna viridis (Bivalvia: Mytilidae) following exposure to acute, sublethal, copper. Chemosphere, 52 (7), 1147–1151.
  • Niyogi, S., et al., 2001. Antioxidant enzymes in brackishwater oyster, Saccostrea cucullata as potential biomarkers of polyaromatic hydrocarbon pollution in Hooghly Estuary (India): seasonality and its consequences. The science of the total environment, 281 (1–3), 237–246.
  • Oliveira, P., et al., 2018. Effects of microplastics and mercury in the freshwater bivalve Corbicula fluminea (Müller, 1774): filtration rate, biochemical biomarkers and mercury bioconcentration. Ecotoxicology and environmental safety, 164, 155–163.
  • Pagano, M., et al., 2017. The influence of exposure of cadmium chloride and zinc chloride on haemolymph and digestive gland cells from Mytilus galloprovincialis. International journal of environmental research, 11 (2), 207–216.
  • Pagano, M., et al., 2020. Impact of neonicotinoids to aquatic invertebrates—in vitro studies on Mytilus galloprovincialis: a review. Journal of marine science and engineering, 8 (10), 801.
  • Qadermarzi, A., et al., 2018. Investigation of sub-acute levels of zinc oxide nanoparticles on the filtration rate of Mytilaster lineatus and Dressina polymorpha in the short term. Nusantara bioscience, 10 (1), 53–57.
  • Quadros, M.E., and Marr, L.C., 2010. Environmental and human health risks of aerosolized silver nanoparticles. Journal of the air & waste management association (1995), 60 (7), 770–781.
  • Ray, A., et al., 2020. Effects of copper oxide nanoparticle on gill filtration rate, respiration rate, hemocyte associated immune parameters and oxidative status of an Indian freshwater mussel. Comparative biochemistry and physiology. toxicology & pharmacology: CBP, 237, 108855
  • Rocha, T.L., et al., 2015. Ecotoxicological impact of engineered nanomaterials in bivalve molluscs: an overview. Marine environmental research, 111, 74–88.
  • Ruiz, P., et al., 2015. Short-term effects on antioxidant enzymes and long-term genotoxic and carcinogenic potential of CuO nanoparticles compared to bulk CuO and ionic copper in mussels Mytilus galloprovincialis. Marine environmental research, 111, 107–120.
  • Saggese, I., Sarà, G., and Dondero, F., 2016. Silver nanoparticles affect functional bioenergetic traits in the invasive red sea Mussel Brachidontes pharaonis. BioMed research international, 2016, 1872351.
  • Sauvé, S., et al., 2002. Phagocytic activity of marine and freshwater bivalves: in vitro exposure of hemocytes to metals (Ag, Cd, Hg and Zn). Aquatic toxicology (Amsterdam, Netherlands), 58 (3–4), 189–200.
  • Savorelli, F., et al., 2017. Fitness evaluation of Ruditapes philippinarum exposed to Ni. Biological trace element research, 177 (2), 384–393.
  • Seaton, A., et al., 2010. Nanoparticles, human health hazard and regulation. Journal of the royal society interface, 7 (suppl_1), S119–S129.
  • Sehonova, P., et al., 2017. Effects of selected tricyclic antidepressants on early-life stages of common carp (Cyprinus carpio). Chemosphere, 185, 1072–1080.
  • Shi, W., et al., 2017. Immunotoxicity of nanoparticle nTiO2 to a commercial marine bivalve species, Tegillarca granosa. Fish & shellfish immunology, 66, 300–306.
  • Stara, A., et al., 2019. Acute exposure of common yabby (Cherax destructor) to the neonicotinoid pesticide. Science of the total environment, 665, 718–723.
  • Stara, A., et al., 2020. Acute effects of neonicotinoid insecticides on Mytilus galloprovincialis: a case study with the active compound thiacloprid and the commercial formulation calypso 480 SC. Ecotoxicology and environmental safety, 203, 110980.
  • Su, W., et al., 2017. Benzo [a] pyrene exposure under future ocean acidification scenarios weakens the immune responses of blood clam, Tegillarca granosa. Fish & shellfish immunology, 63, 465–470.
  • Sun, T.Y., et al., 2016. Dynamic probabilistic modeling of environmental emissions of engineered nanomaterials. Environmental science & technology, 50 (9), 4701–4711.
  • Sun, X., et al., 2017. Are CuO nanoparticles effects on hemocytes of the marine scallop (Chlamys farreri) caused by particles and/or corresponding released ions? Ecotoxicology and environmental safety, 139, 65–72.
  • Sureda, A., et al., 2013. Polycyclic aromatic hydrocarbon levels and measures of oxidative stress in the Mediterranean endemic bivalve Pinna nobilis exposed to the Don Pedro oil spill. Marine pollution bulletin, 71 (1–2), 69–73.
  • Taze, C., et al., 2016. Toxicity assessment and comparison between two types of iron oxide nanoparticles in Mytilus galloprovincialis. Aquatic toxicology (Amsterdam, Netherlands), 172, 9–20.
  • Torre, A., Trischitta, F., and Faggio, C., 2013. Effect of CdCl2 on regulatory volume decrease (RVD) in Mytilus galloprovincialis digestive cells. Toxicology in vitro: an international journal published in association with bibra, 27 (4), 1260–1266.
  • Turan, N.B., et al., 2019. Nanoparticles in the aquatic environment: usage, properties, transformation and toxicity—a review. Process safety and environmental protection, 130, 238–249.
  • Vijayakumar, S., et al., 2019. Bioinspired zinc oxide nanoparticles using Lycopersicon esculentum for antimicrobial and anticancer applications. Journal of cluster science, 30 (6), 1465–1479.
  • Vikas, M., and Dwarakish, G.S., 2015. Coastal pollution: a review. Aquatic procedia, 4, 381–388.
  • Vishwakarma, V., Samal, S.S., and Manoharan, N., 2010. Safety and risk associated with nanoparticles-a review. Journal of minerals and materials characterization and engineering, 9 (5), 455–459.
  • Volland, M., et al., 2015. Citrate gold nanoparticle exposure in the marine bivalve Ruditapes philippinarum: uptake, elimination and oxidative stress response. Environmental science and pollution research, 22 (22), 17414–17424.
  • Wang, Y., et al., 2014. Immune toxicity of TiO2 under hypoxia in the green-lipped mussel Perna viridis based on flow cytometric analysis of hemocyte parameters. Science of the total environment, 470, 791–799.
  • Wei, L., et al., 2015. Proteomic and metabolomic responses of Pacific oyster Crassostrea gigas to elevated pCO2 exposure. Journal of proteomics, 112, 83–94.
  • Weir, A., et al., 2012. Titanium dioxide nanoparticles in food and personal care products. Environmental science & technology, 46 (4), 2242–2250.
  • Wootton, E.C., et al., 2003. Comparisons of PAH-induced immunomodulation in three bivalve molluscs. Aquatic toxicology (Amsterdam, Netherlands), 65 (1), 13–25.
  • Wu, F., et al., 2020. Interactive effects of salinity variation and exposure to ZnO nanoparticles on the innate immune system of a sentinel marine bivalve, Mytilus edulis. Science of the total environment, 712, 136473.
  • Xia, B., et al., 2015. Interaction of TiO2 nanoparticles with the marine microalga Nitzschia closterium: growth inhibition, oxidative stress and internalization. Science of the total environment, 508, 525–533.
  • Yusof, A.M., Yanta, N.F., and Wood, A.K.H., 2004. The use of bivalves as bio-indicators in the assessment of marine pollution along a coastal area. Journal of radioanalytical and nuclear chemistry, 259 (1), 119–127.
  • Zha, S., et al., 2019. Immunotoxicity of four nanoparticles to a marine bivalve species, Tegillarca granosa. Journal of hazardous materials, 377, 237–248.
  • Zhu, Z., et al., 2011. Morphological, structural characteristics and phagocytic and enzymatic activities of haemocytes in blood clam Tegillarca granosa. Journal of fisheries of China, 35 (10), 1494–1504.
  • Zuykov, M., Pelletier, E., and Harper, D.A., 2013. Bivalve mollusks in metal pollution studies: from bioaccumulation to biomonitoring. Chemosphere, 93 (2), 201–208.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.