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Original Articles

In vivo and in vitro evidence for the involvement of Nrf2-antioxidant response element signaling pathway in the inflammation and oxidative stress induced by particulate matter (PM10): the effective role of gallic acid

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Pages 210-225 | Received 01 Nov 2018, Accepted 10 Dec 2018, Published online: 22 Feb 2019

References

  • Davidson CI, Phalen RF, Solomon PA. Airborne particulate matter and human health: a review. Aerosol Sci Technol. 2005;39(8):737–749.
  • Naimabadi A, Ghadiri A, Idani E, et al. Chemical composition of PM10 and its in vitro toxicological impacts on lung cells during the Middle Eastern Dust (MED) storms in Ahvaz, Iran. Environ Pollut. 2016;211:316–324.
  • Heidari-Farsani M. The evaluation of heavy metals concentration related to PM10 in ambient air of Ahvaz city, Iran. J Adv Environ Health Res. 2013;1(2):120–128.
  • Rezaei M, Salimi A, Taghidust M, et al. A comparison of toxicity mechanisms of dust storm particles collected in the southwest of Iran on lung and skin using isolated mitochondria. Toxicol Environ Chem. 2014;96(5):814–830.
  • Pražnikar Z, Pražnikar J. The effects of particulate matter air pollution on respiratory health and on the cardiovascular system. Slov J Public Health. 2012;51(3):190–199.
  • Brook RD, Rajagopalan S, Pope CA, et al. Particulate matter air pollution and cardiovascular disease: an update to the scientific statement from the American Heart Association. Circulation. 2010;121(21):2331–2378.
  • Li N, Xia T, Nel AE. The role of oxidative stress in ambient particulate matter-induced lung diseases and its implications in the toxicity of engineered nanoparticles. Free Radic Biol Med. 2008;44(9):1689–1699.
  • Gould NS, Day BJ. Targeting maladaptive glutathione responses in lung disease. Biochem Pharmacol. 2011;81(2):187–193.
  • Lu SC. Regulation of glutathione synthesis. Mol Aspects Med. 2009;30(1–2):42–59.
  • Nguyen T, Nioi P, Pickett CB. The Nrf2-antioxidant response element signaling pathway and its activation by oxidative stress. J Biol Chem. 2009;284(20):13291–13295.
  • Huang Y, Li W, Su ZY, et al. The complexity of the Nrf2 pathway: beyond the antioxidant response. J Nutr Biochem. 2015;26(12):1401–1413.
  • Locatelli C, Filippin-Monteiro FB, Centa A, et al. Antioxidant, antitumoral and anti-inflammatory activities of gallic acid. In: Michelle A. Thompson, Parker B. Collins, editors Handbook on gallic acid: natural occurrences, antioxidant properties and health implications. 4th ed. Nova Publishers; 2013. p. 1–23.
  • Hoffmann C, Funk R, Li Y, et al. Effect of grazing on wind driven carbon and nitrogen ratios in the grasslands of Inner Mongolia. Catena. 2008;75(2):182–190.
  • Farsani MH, Shirmardi M, Alavi N, et al. Evaluation of the relationship between PM 10 concentrations and heavy metals during normal and dusty days in Ahvaz, Iran. Aeolian Res. 2018;33:12–22.
  • Dianat M, Sadeghi N, Badavi M, et al. Protective effects of co-administration of gallic acid and cyclosporine on rat myocardial morphology against ischemia/reperfusion. Jundishapur J Nat Pharm Prod. 2014;9(4):e17186.
  • Dianat M, Radmanesh E, Badavi M, et al. The effects of PM10 on electrocardiogram parameters, blood pressure and oxidative stress in healthy rats: the protective effects of vanillic acid. Environ Sci Pollut Res. 2016;23(19):19551–19560.
  • Kyung SY, Yoon JY, Kim YJ, et al. Asian dust particles induce TGF-β(1) via reactive oxygen species in bronchial epithelial cells. Tuberc Respir Dis. 2012;73(2):84–92.
  • Choi KC, Lee YH, Jung MG, et al. Gallic acid suppresses lipopolysaccharide-induced nuclear factor-κB signaling by preventing RelA acetylation in A549 lung cancer cells. Mol Cancer Res. 2009;7(12):2011–2021.
  • Li XY, Donaldson K, Brown D, et al. The role of tumor necrosis factor in increased airspace epithelial permeability in acute lung inflammation. Am J Respir Cell Mol Biol. 1995;13(2):185–195.
  • Li XY, Donaldson K, Rahman I, et al. An investigation of the role of glutathione in increased epithelial permeability induced by cigarette smoke in vivo and in vitro. Am J Respir Crit Care Med. 1994;149(6):1518–1525.
  • Kumarathasan P, Breznan D, Das D, et al. Cytotoxicity of carbon nanotube variants: a comparative in vitro exposure study with A549 epithelial and J774 macrophage cells. Nanotoxicology. 2015;9(2):148–161.
  • Gonzalez RJ, Tarloff JB. Evaluation of hepatic subcellular fractions for Alamar blue and MTT reductase activity. Toxicol In Vitro. 2001;15(3):257–259.
  • Jiang H, Zhu Y, Xu H, et al. Activation of hypoxia inducible factor-1a via nuclear factor-kB in rats with chronic obstructive pulmonary disease. ABBS. 2010;42:483–488.
  • Wang Q, Wu X, Tong X, et al. Xuebijing ameliorates sepsis-induced lung injury by downregulating HMGB1 and RAGE expressions in mice. Evidbased Complement Alternat Med. 2015;2015:860259.(article ID 860259)
  • Kode A, Rajendrasozhan S, Caito S, et al. Resveratrol induces glutathione synthesis by activation of Nrf2 and protects against cigarette smoke-mediated oxidative stress in human lung epithelial cells. Am J Physiol Lung Cell Mol Physiol. 2008;294(3):L478–L488.
  • Eruslanov E, Kusmartsev S. Identification of ROS using oxidized DCFDA and flow-cytometry. Adv Prot Oxidative Stress. 2010;II:57–72.
  • Schmitt A, Bigl K, Meiners I, et al. Induction of reactive oxygen species and cell survival in the presence of advanced glycation end products and similar structures. Biochim Biophys Acta. 2006;1763(9):927–936.
  • Gao Z, Halmurat U, Wang J, et al. Expression of airway mucus-associated proteins in rats with chronic obstructive pulmonary disease with a cold-dryness symptom pattern. J Tradit Chin Med. 2016;36(5):671–677.
  • Cho HY, Jedlicka AE, Reddy SP, et al. Role of NRF2 in protection against hyperoxic lung injury in mice. Am J Respir Cell Mol Biol. 2002;26(2):175–182.
  • Shetty GA, Hattiangady B, Upadhya D, et al. Chronic oxidative stress, mitochondrial dysfunction, Nrf2 activation and inflammation in the hippocampus accompany heightened systemic inflammation and oxidative stress in an animal model of Gulf War Illness. Front Mol Neurosci. 2017;10:182.
  • Kelly FJ, Fussell JC. Air pollution and public health: emerging hazards and improved understanding of risk. Environ Geochem Health. 2015;37(4):631–649.
  • Pineton de Chambrun GP, Body-Malapel M, Frey-Wagner I, et al. Aluminum enhances inflammation and decreases mucosal healing in experimental colitis in mice. Mucosal Immunol. 2014;7(3):589–601.
  • Exley C, Siesjö P, Eriksson H. The immunobiology of aluminium adjuvants: how do they really work? Trends Immunol. 2010;31(3):103–109.
  • MacNee W, Donaldson K. Mechanism of lung injury caused by PM 10 and ultrafine particles with special reference to COPD. Eur Respir J. 2003;21(40):47–51.
  • Boutten A, Goven D, Boczkowski J, et al. Oxidative stress targets in pulmonary emphysema: focus on the Nrf2 pathway. Expert Opin Ther Targets. 2010;14(3):329–346.
  • Ha KN, Chen Y, Cai J, et al. Increased glutathione synthesis through an ARE-Nrf2-dependent pathway by zinc in the RPE: implication for protection against oxidative stress. Invest Ophthalmol Vis Sci. 2006;47(6):2709–2715.
  • Yi S, Zhang F, Qu F, et al. Water-insoluble fraction of airborne particulate matter (PM10) induces oxidative stress in human lung epithelial A549 cells. Environ Toxicol. 2014;29(2):226–233.
  • Cullinan SB, Diehl JA. PERK-dependent activation of Nrf2 contributes to redox homeostasis and cell survival following endoplasmic reticulum stress. J Biol Chem. 2004;279(19):20108–20117.
  • Mard SA, Mojadami S, Farbood Y, et al. The anti-inflammatory and anti-apoptotic effects of gallic acid against mucosal inflammation- and erosions-induced by gastric ischemia-reperfusion in rats. Vet Res Forum. 2015;6(4):305–311.
  • Pal C, Bindu S, Dey S, et al. Gallic acid prevents nonsteroidal anti-inflammatory drug-induced gastropathy in rat by blocking oxidative stress and apoptosis. Free Radic Biol Med. 2010;49(2):258–267.
  • Kalantar M, Khodayar MJ, Kalantari H, et al. Therapeutic effect of gallic acid against paraquat-induced lung injury in rats. Jundishapur J Nat Pharm Prod. 2018;13(3):e12450.
  • Nikbakht J, Hemmati AA, Arzi A, et al. Protective effect of gallic acid against bleomycin-induced pulmonary fibrosis in rats. Pharmacol Rep. 2015;67(6):1061–1067.
  • Feng RB, Wang Y, He C, et al. Gallic acid, a natural polyphenol, protects against tert-butyl hydroperoxide-induced hepatotoxicity by activating ERK-Nrf2-Keap1-mediated antioxidative response. Food Chem Toxicol 2018;119:479–488.
  • Mohammadi MJ, Geravandi S, Vosoughi M, et al. An association between air quality and COPD in Ahvaz, Iran. Jundishapur J Chronic Dis Care. 2015;4(1):e26621.

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