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Research Article

Mitochondrial dysfunction in titanium dioxide nanoparticle-induced neurotoxicity

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Pages 355-363 | Received 12 Nov 2014, Accepted 08 Feb 2015, Published online: 16 Mar 2015

References

  • Ahmed RS, Suke SG, Seth V, et al. (2006). Impact of oral vitamin E supplementation on oxidative stress and lipid peroxidation in patients with polymorphous light eruption. Indian J Med Res 123:781–7
  • Ahsan H, Ali A, Ali R. (2003). Oxygen free radicals and systemic autoimmunity. Clin Exp Immunol 131:398–404
  • Allen CL, Bayraktutan U. (2009). Oxidative stress and its role in the pathogenesis of ischaemic stroke. Int J Stroke 4:461–70
  • Andreyev AY, Kushnareva YE, Starkov AA. (2005). Mitochondrial metabolism of reactive oxygen species. Biochemistry (Mosc) 70:200–14
  • Bhagwat SV, Vijayasarathy C, Raza H, et al. (1998). Preferential effects of nicotine and 4-(N-methyl-N-nitrosamine)-1-(3-pyridyl)-1-butanone on mitochondrial glutathione S-transferase A4-4 induction and increased oxidative stress inthe rat brain. Biochem Pharmacol 56:831–9
  • Blaisdell FW. (2002). The pathophysiology of skeletal muscle ischemia and the reperfusion syndrome: a review. Cardiovasc Surg 10:620–30
  • Chen YR, Chen CL, Zhang L, et al. (2005). Superoxide generation from mitochondrial NADH dehydrogenase induces self-inactivation with specific protein radical formation. J Biol Chem 280:37339–48
  • Colvin VL. (2003). The potential environmental impact of engineered nanomaterials. Nat Biotechnol 21:1166–70
  • Correia SC, Carvalho C, Cardoso S, et al. (2010). Mitochondrial preconditioning: a potential neuroprotective strategy. Front Aging Neurosci 138:1–13
  • Curtin JF, Donovan M, Cotter TG. (2002). Regulation and measurement of oxidative stress in apoptosis. J Immunol Methods 265:49–72
  • Dalle-Donne I, Rossi R, Giustarini D, et al. (2002). Methionine oxidation as a major cause of the functional impairment of oxidized actin. Free Radic Bio Med 32:927–37
  • Federici G, Shaw BJ, Handy RD. (2007). Toxicity of titanium dioxide nanoparticles to rainbow trout (Oncorhynchus mykiss): gill injury, oxidative stress, and other physiological effects. Aquatic Toxicol 84:415–30
  • Floor E, Wetzel MG. (1998). Increased protein oxidation in human substantia nigra parscompacta in comparison with basal ganglia and prefrontal cortex measured with an improved dinitrophenylhydrazine assay. J Neurochem 70:268–75
  • Foley KF, Van Dort ME, Sievert MK, et al. (2002). Stereospecific inhibition of monoamine uptake transporters by meta-hydroxyephedrine isomers. J Neural Transm 109:1229–40
  • Garcia J, Han D, Sancheti H, et al. (2010). Regulation of mitochondrial glutathione redox status and protein glutathionylation by respiratory substrates. J Biol Chem 285:39646–54
  • Ghezzi P, Romines B, Fratelli M, et al. (2002). Protein glutathionylation: coupling and uncoupling of glutathione to protein thiol groups in lymphocytes under oxidative stress and HIV infection. Mol Immunol 38:773–80
  • González-Salazar A, Molina-Jijón E, Correa F, et al. (2011). Curcumin protects from cardiac reperfusion damage by attenuation of oxidant stress and mitochondrial dysfunction. Cardiovasc Toxicol 11:357–64
  • Govil N, Chaudhary S, Waseem M, Parvez S. (2012). Postnuclear supernatant: an in vitro model for assessing cadmium-induced neurotoxicity. Biol Trace Elem Res 146:402–9
  • Gramowski A, Flossdorf J, Bhattacharya K, et al. (2010). Nanoparticles induce changes of the electrical activity of neuronal networks on microelectrode array neurochips. Environ Health Perspect 118:1363–9
  • Guo J, Zhu S, Chen Z, et al. (2011). Sonochemical synthesis of TiO2 nanoparticles on graphene for use as photocatalyst. Ultrason Sonochem 18:1082–90
  • Haque R, Bin-Hafeez B, Parvez S, et al. (2003). Aqueous extract of walnut (Juglans regia L.) protects mice against cyclophosphamide induced biochemical toxicity. Hum Exp Toxicol 22:473–80
  • Hiura TS, Li N, Kaplan R, et al. (2000). The role of a mitochondrial pathway in the induction of apoptosis by chemicals extracted from diesel exhaust particles. J Immunol 165:2703–11
  • Hussain SM, Hess KL, Gearhart JM, et al. (2005). In vitro toxicity of nanoparticles in BRL 3A rat liver cells. Toxicol In Vitro 19:975–83
  • Haase A, Rott S, Mantion A, et al. (2012). Effects of silver nanoparticles on primary mixed neural cell cultures: uptake, oxidative stress and acute calcium responses. Toxicol Sci 126:457–68
  • Iwata T, Nishiyama N, Nagano K, et al. (2012). Role of pulmonary resection in the diagnosis and treatment of limited-stage small cell lung cancer: revision of clinical diagnosis based on findings of resected specimen and its influence on survival. Gen Thorac Cardiovasc Surg 60:43–52
  • Johnston HJ, Hutchison GR, Christensen FM, et al. (2009). Identification of the mechanisms that drive the toxicity of TiO2 particulates: the contribution of physicochemical characteristics. Part Fibre Toxicol 6:33–9
  • Kamboj SS, Sandhir R. (2011). Protective effect of N-acetylcysteine supplementation on mitochondrial oxidative stress and mitochondrial enzymes in cerebral cortex of streptozotocin-treated diabetic rats. Mitochondrion 11:214–22
  • Kanbagli O, Balkan J, Aykaç-Toker G, Uysal M. (2002). Hepatic mitochondrial prooxidant and antioxidant status in ethanol-induced liver injury in rats. Bio Pharm Bull 25:1482–4
  • Krystek P, Tentschert J, Nia Y, et al. (2014). Method development and inter-laboratory comparison about the determination of titanium from titanium dioxide nanoparticles in tissues by inductively coupled plasma mass spectrometry. Anal Bioanal Chem 406:3853–61
  • Kudin AP, Bimpong-Buta NY, Vielhaber S, et al. (2004). Characterization of superoxide-producing sites in isolated brain mitochondria. J Biol Chem 279:4127–35
  • Li M, Xia T, Jiang CS, et al. (2003). Cadmium directly induced the opening of membrane permeability pore of mitochondria which possibly involved in cadmium-triggered apoptosis. Toxicology 194:19–33
  • Liang G, Pu Y, Yin L, et al. (2009). Influence of different sizes of titanium dioxide nanoparticles on hepatic and renal functions in rats with correlation to oxidative stress. J Toxicol Environ Health A 72:740–5
  • Liu Y, Fiskum G, Schubert D. (2002). Generation of reactive oxygen species by the mitochondrial electron transport chain. J Neurochem 80:780–7
  • Long TC, Saleh N, Tilton RD, et al. (2006). Titanium dioxide (P25) produces reactive oxygen species in immortalized brain microglia (BV2): implications for nanoparticle neurotoxicity. Environ Sci Technol 40:4346–52
  • Long TC, Tajuba J, Sama P, et al. (2007). Nanosize titanium dioxide stimulates reactive oxygen species in brain microglia and damages neurons in vitro. Environ Health Perspect 115:1631–7
  • Lowry OH, Rosebrough NJ, Farr AL, Randall RJ. (1951). Protein measurement with the Folin phenol reagent. J Biol Chem 193:265–75
  • Ma L, Liu J, Li N, et al. (2010). Oxidative stress in the brain of mice caused by translocated nanoparticulate TiO2 delivered to the abdominal cavity. Biomaterials 31:99–105
  • Moller P, Jacobsen NR, Folkmann JK, et al. (2010). Role of oxidative damage in toxicity of particulates. Free Radic Res 44:1–46
  • Moore MN, Allen JI, McVeigh K. (2006). Environmental prognostics: an integrated model supporting lysosomal stress response as predictive biomarkers of animal health status. Mar Environ Res 61:278–304
  • Morin C, Zini R, Simon N, Tillement JP. (2002). Dehydroepiandrosterone and -estradiol limit the functional alterations of rat brain mitochondria submitted to different experimental stresses. Neuroscience 115:415–24
  • Mruk DD, Silvestrini B, Mo MY, Cheng CY. (2002). Antioxidant superoxide dismutase – a review: its function, regulation in the testis, and role in male fertility. Contraception 65:305–11
  • Nakamoto RK, Baylis Scanlon JA, Al-Shawi MK. (2008). The rotary mechanism of the ATP synthase. Arch Biochem Biophys 476:43–50
  • Nohynek GJ, Dufour EK, Roberts MS. (2008). Nanotechnology, cosmetics and the skin: is there a health risk? Skin Pharmacol Physiol 21:136–49
  • Oberdörster G, Maynard A, Donaldson K, et al. (2005). Principles for characterizing the potential human health effects from exposure to nanomaterials: elements of a screening strategy. Part Fibre Toxicol 2:8
  • Oberdörster G, Sharp Z, Atudorei V, et al. (2004). Translocation of inhaled ultrafine particles to the brain. Inhal Toxicol 16:437–45
  • Obrenovich ME, Li Y, Parvathaneni K, et al. (2011). Antioxidants in health, disease and aging. CNS Neurol Disord Drug Targets 10:192–207
  • Oyedotun KS, Lemire BD. (2004). The quaternary structure of the Saccharomyces cerevisiae succinate dehydrogenase. Homology modeling, cofactor docking, and molecular dynamics simulation studies. J Biol Chem 279:9424–31
  • Parvez S, Winkler-Stuck K, Hertel S, et al. (2010). The dopamine-D2-receptor agonist ropinirole dose-dependently blocks the Ca2+-triggered permeability transition of mitochondria. Biochim Biophys Acta 1797:1245–50
  • Ranjbar A, Sharifzadeh M, Karimi J, et al. (2014). Propofol attenuates toxic oxidative stress by CCl4 in liver mitochondria and blood in rat. Iran J Pharm Res 13:253–62
  • Rashidi L, Khosravi-Darani K. (2011). The applications of nanotechnology in food industry. Crit Rev Food Sci Nutr 51:723–30
  • Rezvanfar MA, Farshid AA, Sadrkhanlou RA. (2010). Benefit of Satureja khuzestanica in subchronically rat model of cyclophosphamide-induced hemorrhagic cystitis. Exp Toxicol Pathol 62:323–30
  • Sekar D, Falcioni ML, Barucca G, Falcioni G. (2014). DNA damage and repair following in vitro exposure to two different forms of titanium dioxide nanoparticles on trout erythrocyte. Environ Toxicol 29:117–27
  • Sies H. (1999). Glutathione and its role in cellular functions. Free Radic Biol Med 27:916–21
  • Srinivasan S, Pari L. (2012). Ameliorative effect of diosmin, a citrus flavonoid against streptozotocin-nicotinamide generated oxidative stress induced diabetic rats. Chem Biol Interact 195:43–51
  • Suzuki H, Toyooka T, Ibuki Y. (2007). Simple and easy method to evaluate uptake potential of nanoparticles in mammalian cells using a flow cytometric light scatter analysis. Environ Sci Technol 41:3018–24
  • Tabassum H, Parvez S, Pasha ST, et al. (2010). Protective effect of lipoic acid against methotrexate-induced oxidative stress in liver mitochondria. Food Chem Toxicol 48:1973–9
  • Tabassum H, Parvez S, Rehman H, et al. (2007). Catechin as an antioxidant in liver mitochondrial toxicity: inhibition of tamoxifen-induced protein oxidation and lipid peroxidation. J Biochem Mol Toxicol 21:110–17
  • Teodoro JS, Simões AM, Duarte FV, et al. (2011). Assessment of the toxicity of silver nanoparticles in vitro: a mitochondrial perspective. Toxicol In Vitro 25:664–70
  • Uttara B, Singh AV, Zamboni P, Mahajan RT. (2009). Oxidative stress and neurodegenerative diseases: a review of upstream and downstream antioxidant therapeutic options. Curr Neuropharmacol 7:65–74
  • Wang J, Chen C, Liu Y, et al. (2008). Potential neurological lesion after nasal instillation of TiO(2) nanoparticles in the anatase and rutile crystal phases. Toxicol Lett 183:72–80
  • Waseem M, Bhardwaj M, Tabassum H, et al. (2015). Cisplatin hepatotoxicity mediated by mitochondrial stress. Drug Chem Toxicol 13:1–8
  • Wolf R, Matz H, Orion E, Lipozencić J. (2003). Sunscreens-the ultimate cosmetic. Acta Dermatovenerol Croat 11:158–62
  • Zhang L, Bai R, Li B, et al. (2011). Rutile TiO2 particles exert size and surface coating dependent retention and lesions on the murine brain. Toxicol Lett 207:73–81
  • Zitka O, Skalickova S, Gumulec J, et al. (2012). Redox status expressed as GSH:GSSG ratio as a marker for oxidative stress in paediatric tumour patients. Oncol Lett 4:1247–53

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