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Research Article

Toxicological interactions of silver nanoparticles and organochlorine pesticides in mouse peritoneal macrophages

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Pages 251-259 | Received 22 Dec 2015, Accepted 25 Feb 2016, Published online: 22 Mar 2016

References

  • Almeida JP, Chen AL, Foster A, Drezek R. (2011). In vivo biodistribution of nanoparticles. Nanomedicine 6:815–35
  • Arai Y, Miyayama T, Hirano S. (2015). Difference in the toxicity mechanism between ion and nanoparticle forms of silver in the mouse lung and in macrophages. Toxicology 328:84–92
  • Arora S, Tyagi N, Bhardwaj A, et al. (2015). Silver nanoparticles protect human keratinocytes against UVB radiation-induced DNA damage and apoptosis: potential for prevention of skin carcinogenesis. Nanomedicine 11:1265–75
  • Artiaga G, Ramos K, Ramos L, et al. (2015). Migration and characterisation of nanosilver from food containers by AF4-ICP-MS. Food Chem 166:76–85
  • AshaRani PV, Mun GLK, Hande MP, Valiyaveettil S. (2009). Cytotoxicity and genotoxicity of silver nanoparticles in human cells. ACS Nano 3:279–90
  • Aueviriyavit S, Phummiratch D, Maniratanachote R. (2014). Mechanistic study on the biological effects of silver and gold nanoparticles in Caco-2 cells-induction of the Nrf2/HO-1 pathway by high concentrations of silver nanoparticles. Toxicol Lett 224:73–83
  • Ayub S, Verma J, Das N. (2003). Effect of endosulfan and malathion on lipid peroxidation, nitrite and TNF-alpha release by rat peritoneal macrophages . Int Immunopharmacol 3:1819–28
  • Babior BM. (2000). Phagocytes and oxidative stress. Am J Med 109:33–44
  • Baun A, Sorensen SN, Rasmussen RF, et al. (2008). Toxicity and bioaccumulation of xenobiotic organic compounds in the presence of aqueous suspensions of aggregates of nano-C(60). Aquat Toxicol 86:379–87
  • Benov L, Szteinberg L, Fridovich I. (1998). Critical evaluation of the use of hydroethidine as a measure of superoxide anion radical. Free Radic Biol Med 25:826–31
  • Bianco C, Adami G, Crosera M, et al. (2014). Silver percutaneous absorption after exposure to silver nanoparticles: a comparison study of three human skin graft samples used for clinical applications. Burns 40:1390–6
  • Blaser SA, Scheringer M, MacLeod M, Hungerbuhler K. (2008). Estimation of cumulative aquatic exposure and risk due to silver: contribution of nano-functionalized plastics and textiles. Sci Total Environ 390:396–409
  • Borga K, Gabrielsen GW, Skaare JU. (2001). Biomagnification of organochlorines along a Barents Sea food chain. Environ Pollut. 113:187–98
  • Boscá L, Zeini M, Través PG, Hortelano S. (2005). Nitric oxide and cell viability in inflammatory cells: a role for NO in macrophage function and fate. Toxicology 208:249–58
  • Buchi DF, De Souza W. (1992). Internalization of surface components during ingestion of Saccharomyces cerevisiae by macrophages. J Submicr Cytol Path 24:135–41
  • Bussolaro D, Filipak Neto F, Glinski A, et al. (2012). Bioaccumulation and related effects of PCBs and organochlorinated pesticides in freshwater fish Hypostomus commersoni. J Environ Monit 14:2154–63
  • Carlson C, Hussain SM, Schrand AM, et al. (2008). Unique cellular interaction of silver nanoparticles: size-dependent generation of reactive oxygen species. J Phys Chem B 112:13608–19
  • Chairuangkitti P, Lawanprasert S, Roytrakul S, et al. (2013). Silver nanoparticles induce toxicity in A549 cells via ROS-dependent and ROS-independent pathways. Toxicol in Vitro 27:330–8
  • Chen X, Schluesener HJ. (2008). Nanosilver: a nanoproduct in medical application. Toxicol Lett 176:1–12
  • Corsini E, Sokooti M, Galli CL, et al. (2013). Pesticide induced immunotoxicity in humans: a comprehensive review of the existing evidence. Toxicology 307:123–35
  • De Jong WH, Van Der Ven LT, Sleijffers A, et al. (2013). Systemic and immunotoxicity of silver nanoparticles in an intravenous 28 days repeated dose toxicity study in rats. Biomaterials 34:8333–43
  • De Matteis V, Malvindi MA, Galeone A, et al. (2015). Negligible particle-specific toxicity mechanism of silver nanoparticles: the role of Ag + ion release in the cytosol. Nanomedicine: NBM 11:731–9
  • Dong C, Yan Z, Kokx J, et al. (2012). Antibacterial and surface enhanced Raman scattering (SERS) activities of AgCl cubes synthesized by pulsed laser ablation in liquid. Appl Surf Sci 258:9218–22
  • El Mahdy MM, Eldin TA, Aly HS, et al. (2015). Evaluation of hepatotoxic and genotoxic potential of silver nanoparticles in albino rats. Exp Toxicol Pathol 67:21–9
  • Eom HJ, Chatterjee N, Lee J, Choi J. (2014). Integrated mRNA and micro RNA profiling reveals epigenetic mechanism of differential sensitivity of Jurkat T cells to AgNPs and Ag ions. Toxicol Lett 229:311–18
  • Filon FL, Mauro M, Adami G, et al. (2015). Nanoparticles skin absorption: new aspects for a safety profile evaluation. Regul Toxicol Pharmacol 72:310–22
  • Giovanni M, Yue J, Zhang L, et al. (2015). Pro-inflammatory responses of RAW264.7 macrophages when treated with ultralow concentrations of silver, titanium dioxide, and zinc oxide nanoparticles. J Hazard Mater 297:146–52
  • Gottschalk F, Ort C, Scholz RW, Nowack B. (2011). Engineered nanomaterials in rivers-exposure scenarios for Switzerland at high spatial and temporal resolution. Environ Pollut 159:3439–45
  • Hadrup N, Loeschner K, Mortensen A, et al. (2012). The similar neurotoxic effects of nanoparticulate and ionic silver in vivo and in vitro. Neurotoxicology 33:416–23
  • He WW, Zhou YT, Wamer WG, et al. (2012). Mechanisms of the pH dependent generation of hydroxyl radicals and oxygen induced by Ag nanoparticles. Biomaterials 33:7547–55
  • Hortelano S, Zeini M, Castrillo A, et al. (2002). Induction of apoptosis by nitric oxide in macrophages is independent of apoptotic volume decrease. Cell Death Differ 9:643–50
  • Hsin YH, Chen CF, Huang S, et al. (2008). The apoptotic effect of nanosilver is mediated by a ROS- and JNK-dependent mechanism involving the mitochondrial pathway in NIH3T3 cells. Toxicol Lett 179:130–9
  • Jeong GN, Jo UB, Ryu HY, et al. (2010). Histochemical study of intestinal mucins after administration of silver nanoparticles in Sprague-Dawley rats. Arch Toxicol 84:63–9
  • Karlsson HL, Cronholm P, Gustafsson J, Möller L. (2008). Copper oxide nanoparticles are highly toxic: a comparison between metal oxide nanoparticles and carbon nanotubes. Chem Res Toxicol 21:1726–32
  • Kaur J, Tikoo K. (2013). Evaluating cell specific cytotoxicity of differentially charged silver nanoparticles. Food Chem Toxicol 51:1–14
  • Kaushik P, Kaushik G. (2007). An assessment of structure and toxicity correlation in organochlorine pesticides. J Hazard Mater. 143:102–11
  • Lee YH, Cheng FY, Chiu HW, et al. (2014). Cytotoxicity, oxidative stress, apoptosis and the autophagic effects of silver nanoparticles in mouse embryonic fibroblasts. Biomaterials 35:4706–15
  • Levard C, Mitra S, Yang T, et al. (2013). Effect of chloride on the dissolution rate of silver nanoparticles and toxicity to E. coli. Environ Sci Technol 47:5738–45
  • Lomer MC, Thompson RP, Powell JJ. (2002). Fine and ultrafine particles of the diet: influence on the mucosal immune response and association with Crohn’s disease. Proc Nutr Soc 61:123–30
  • Lu J, Liu J, Wei Y, et al. (2007). Preparation of single-walled carbon nanotube fiber coating to solid-phase microextraction of organochlorine pesticides in lake water and wastewater. J Sep Sci 30:2136–43
  • Magesky A, Pelletier E. (2015). Toxicity mechanisms of ionic silver and polymer-coated silver nanoparticles with interactions of functionalized carbon nanotubes on early development stages of sea urchin. Aquat Toxicol 167:106–23
  • Malaczewska J. (2014). Effect of 28-day oral administration of silver nanocolloid on the peripheral blood leukocytes in mice. Pol J Vet Sci 17:263–73
  • Massarsky A, Trudeau VL, Moon TW. (2014). Predicting the environmental impact of nanosilver. Environ Toxicol Pharmacol 38:861–73
  • Miranda AL, Roche H, Randi MAF, et al. (2008). Bioaccumulation of chlorinated pesticides and PCBs in the tropical freshwater fish Hoplias malabaricus: histopathological, physiological, and immunological findings. Environ Int 34:939–49
  • Misko T, Schilling RJ, Salvemini D, et al. (1993). A fluorometric assay for the measurement of nitrite in biological samples. Anal Biochem 214:11–6
  • Mosmann T. (1983). Rapid colorimetric assay for cellular growth and survival: application to proliferation and cytotoxicity assays. J Immunol Methods 65:55–63
  • Mueller NC, Nowack B. (2008). Exposure modeling of engineered nanoparticles in the environment. Environ Sci Technol 42:4447–53
  • Mukherjee SG, O’Claonadh N, Casey A, Chambers G. (2012). Comparative in vitro cytotoxicity study of silver nanoparticle on two mammalian cell lines. Toxicol In Vitro 26:238–51
  • Muller J, Huaux F, Fonseca A, et al. (2008). Structural defects play a major role in the acute lung toxicity of multiwalled carbon nanotubes: toxicological aspects. Chem Res Toxicol 21:1698–705
  • Mulley G, Jenkins ATA, Waterfield NR. (2014). Inactivation of the antibacterial and cytotoxic properties of silver ions by biologically relevant compounds. PLos One 9:19
  • Nalwaya N, Deen WM. (2004). Analysis of the effects of nitric oxide and oxygen on nitric oxide production by macrophages. J Theor Biol 226:409–19
  • Nathan C, Shiloh MU. (2000). Reactive oxygen and nitrogen intermediates in the relationship between mammalian hosts and microbial pathogens. Proc Natl Acad Sci USA 97:8841–8
  • Nocchetti M, Donnadio A, Ambrogi V, et al. (2013). Ag/AgCl nanoparticle decorated layered double hydroxides: synthesis, characterization and antimicrobial properties. J Mater Chem B 1:2383–93
  • Nowack B, Ranville JF, Diamond S, et al. (2012). Potential scenarios for nanomaterial release and subsequent alteration in the environment. Environ Toxicol Chem 31:50–9
  • Nowrouzi A, Meghrazi K, Golmohammadi T, et al. (2010). Cytotoxicity of subtoxic AgNP in human hepatoma cell line (HepG2) after long-term exposure. Iran Biomed J 14:23–32
  • Ostermeyer AK, Mumuper CK, Semprini L, Radniecki T. (2013). Influence of bovine serum albumin and alginate on silver nanoparticle dissolution and toxicity to Nitrosomonas europaea. Environ Sci Technol 47:14403–10
  • Park EJ, Yi J, Kim Y, et al. (2010). Silver nanoparticles induce cytotoxicity by a Trojan-horse type mechanism. Toxicol In Vitro 24:872–8
  • Park J, Lim DH, Lim HJ, et al. (2011). Size dependent macrophage responses and toxicological effects of Ag nanoparticles. Chem Commun 47:4382–4
  • Piao MJ, Kang KA, Lee IK, et al. (2011). Silver nanoparticles induce oxidative cell damage in human liver cells through inhibition of reduced glutathione and induction of mitochondria-involved apoptosis. Toxicol Lett 201:92–100
  • Piccinno F, Gottschalk F, Seeger S, Nowack B. (2012). Industrial production quantities and uses of ten engineered nanomaterials in Europe and the World. J Nanopart Res 14:1–11
  • Platonova TA, Pridvorova SM, Zherdev AV, et al. (2013). Identification of silver nanoparticles in the small intestinal mucosa, liver, and spleen of rats by transmission electron microscopy. B Exp Biol Med 155:236–41
  • Prasad RY, McGee JK, Killius MG, et al. (2013). Investigating oxidative stress and inflammatory responses elicited by silver nanoparticles using high-throughput reporter genes in HepG2 cells: effect of size, surface coating, and intracellular uptake. Toxicol In Vitro 27:2013–21
  • Qian H, Peng X, Han X, et al. (2013). Comparison of the toxicity of silver nanoparticles and silver ions on the growth of terrestrial plant model Arabidopsis thaliana. J Environ Sci 25:1947–55
  • Rabitto IS, Bastos WR, Almeida R, et al. (2011). Mercury and DDT exposure risk to fish-eating human populations in Amazon. Environ Int 37:56–65
  • Rolando N, Wade J, Davalos M, et al. (2000). The systemic inflammatory response syndrome in acute liver failure. Hepatology 32:734–9
  • Sang X, Zheng L, Sun Q, et al. (2012). The chronic spleen injury of mice following long-term exposure to titanium dioxide nanoparticles. J Biomed Mater Res A 100A:894–902
  • Sardar R, Park JW, Shumaker-Parry JS. (2007). Polymer-induced synthesis of stable gold and silver nanoparticles and subsequent ligand exchange in water. Langmuir 23:11883–9
  • Sharma H, Zhang P, Barber DS, Liu B. (2010). Organochlorine pesticides dieldrin and lindane induce cooperative toxicity in dopaminergic neurons: role of oxidative stress. Neurotoxicology 31:215–22
  • Shavandi Z, Ghazanfari T, Moghaddam KN. (2011). In vitro toxicity of silver nanoparticles on murine peritoneal macrophages. Immunopharmacol Immunotoxicol 33:135–40
  • Simard JC, Vallieres F, de Liz R, et al. (2015). Silver nanoparticles induce degradation of the endoplasmic reticulum stress sensor activating transcription factor-6 leading to activation of the NLRP-3 inflammasome. J Biol Chem 290:5926–39
  • Singh RP, Ramarao P. (2012). Cellular uptake, intracellular trafficking and cytotoxicity of silver nanoparticles. Toxicol Lett 213:249–59
  • Smulders S, Larue C, Sarret G, et al. (2015). Lung distribution, quantification, co-localization and speciation of silver nanoparticles after lung exposure in mice. Toxicol Lett 238:1–6
  • Stebounova LV, Adamcakova-Dodd A, Kim JS, et al. (2011). Nanosilver induces minimal lung toxicity or inflammation in a subacute murine inhalation model. Part Fibre Toxicol 8:5–12
  • Sun TY, Gottschalk F, Hungerbühler K, Nowack B. (2014). Comprehensive probabilistic modelling of environmental emissions of engineered nanomaterials. Environ Pollut 185:69–76
  • The Project on Emerging Nanotechnologies. (2015). Available from: http://www.nanotechproject.org/inventories/ [last accessed Nov 2015]
  • Wang H, Wu L, Reinhard BM. (2012). Scavenger receptor mediated endocytosis of silver nanoparticles into J774A.1 macrophages is heterogeneous. ACS Nano 6:7122–32
  • Yang Q, Shi Y, He J, Chen Z. (2012). The evolving story of macrophages in acute liver failure. Immunol Lett 147:1–9
  • Yu Y, Duan J, Li Y, et al. (2015). Combined toxicity of amorphous silica nanoparticles and methylmercury to human lung epithelial cells. Ecotoxicol Environ Saf 112:144–52
  • Zhang T, Wang L, Chen Q, Chen C. (2014). Cytotoxic potential of silver nanoparticles. Yonsei Med J 55:283–91

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