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Inhalation Toxicology
International Forum for Respiratory Research
Volume 30, 2018 - Issue 9-10
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Research Article

Subchronic air pollution exposure increases highly palatable food intake, modulates caloric efficiency and induces lipoperoxidation

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Pages 370-380 | Received 14 May 2018, Accepted 26 Sep 2018, Published online: 02 Nov 2018

References

  • Adams K, Greenbaum DS, Shaikh R, et al. (2015). Particulate matter components, sources, and health: systematic approaches to testing effects. J Air Waste Manag Assoc 65:544–58.
  • Aebi H. (1984). Catalase in vitro. Methods Enzymol 105:121–6.
  • Akimoto H. (2003). Global air quality and pollution. Science 302:1716–9.
  • Araujo JA, Nel AE. (2009). Particulate matter and atherosclerosis: role of particle size, composition and oxidative stress. Part Fibre Toxicol 6:24.
  • Archer ZA, Rayner DV, Duncan JS, et al. (2005). Introduction of a high-energy diet acutely up-regulates hypothalamic cocaine and amphetamine-regulated transcript, mc4r and brown adipose tissue uncoupling protein-1 gene expression in male sprague-dawley rats. J Neuroendocrinol 17:10–7.
  • Arts IC, Hollman PC, Kromhout D. (1999). Chocolate as a source of tea flavonoids. Lancet 354:488.
  • Benani A, Troy S, Carmona MC, et al. (2007). Role for mitochondrial reactive oxygen species in brain lipid sensing: redox regulation of food intake. Diabetes 56:152–60.
  • Berthoud HR. (2012). The neurobiology of food intake in an obesogenic environment. Proc Nutr Soc 71:478–87.
  • Bradford MM. (1976). A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. Anal Biochem 72:248–54.
  • Brook RD. (2008). Cardiovascular effects of air pollution. Clin Sci 115:175–87.
  • Brunekreef B, Hoffmann B. (2016). Air pollution and heart disease. Lancet 388:640–2.
  • Charles LE, Burchfiel CM, Violanti JM, et al. (2008). Adiposity measures and oxidative stress among police officers. Obesity (Silver Spring) 16:2489–97.
  • Da Silva Benetti C, Silveira PP, Portella AK, et al. (2007). Could preference for palatable foods in neonatally handled rats alter metabolic patterns in adult life?. Pediatr Res 62:405–11.
  • Da Silva Benetti C, Silveira PP, Matté C, et al. (2010). Effects of a chronic exposure to a highly palatable diet and its withdrawal, in adulthood, on cerebral na+,k+-atpase and plasma s100b in neonatally handled rats. Int J Dev Neurosci 28:153–9.
  • Da Silva Benetti C, Silveira PP, Wyse AT, et al. (2014). Neonatal environmental intervention alters the vulnerability to the metabolic effects of chronic palatable diet exposure in adulthood. Nutr Neurosci 17:127–37.
  • Damiani RM, Piva MO, Petry MR, et al. (2012). Is cardiac tissue more susceptible than lung to oxidative effects induced by chronic nasotropic instillation of residual oil fly ash (rofa)? Toxicol Mech Methods 22:533–9.
  • Dangi-Garimella S. (2014). Environmental pollutants: a risk factor for obesity and diabetes. Am J Manag Care 20:E8.
  • De Macedo IC, de Freitas JS, da Silva Torres IL. (2016). The influence of palatable diets in reward system activation: a mini review. Adv Pharmacol Sci 2016:7238679.
  • Decherf S, Demeneix BA. (2011). The obesogen hypothesis: a shift of focus from the periphery to the hypothalamus. J Toxicol Environ Health B Crit Rev 14:423–48.
  • Després JP, Lemieux I, Bergeron J, et al. (2008). Abdominal obesity and the metabolic syndrome: contribution to global cardiometabolic risk. Arterioscler Thromb Vasc Biol 28:1039–49.
  • Ebbert JO, Jensen MD. (2013). Fat depots, free fatty acids, and dyslipidemia. Nutrients 5:498–508.
  • Erlanson-Albertsson C. (2005). How palatable food disrupts appetite regulation. Basic Clin Pharmacol Toxicol 97:61–73.
  • Esterbauer H, Cheeseman KH. (1990). Determination of aldehydic lipid peroxidation products: malonaldehyde and 4-hydroxynonenal. Methods Enzymol 186:407–21.
  • Falcon-Rodriguez CI, Osornio-Vargas AR, Sada-Ovalle I, Segura-Medina P. (2016). Aeroparticles, composition, and lung diseases. Front Immunol 7:3.
  • Ford ES, Mokdad AH, Giles WH, Brown DW. (2003). The metabolic syndrome and antioxidant concentrations: findings from the third national health and nutrition examination survey. Diabetes 52:2346–52.
  • Gehring U, Wijga AH, Hoek G, et al. (2015). Exposure to air pollution and development of asthma and rhinoconjunctivitis throughout childhood and adolescence: a population-based birth cohort t study. Lancet Respir Med 3:933–42.
  • Grün F, Blumberg B. (2007). Perturbed nuclear receptor signaling by environmental obesogens as emerging factors in the obesity crisis. Rev Endocr Metab Disord 8:161–71.
  • Grün F, Blumberg B. (2009). Endocrine disrupters as obesogens. Mol Cell Endocrinol 304:19–29.
  • Guan WJ, Zheng XY, Chung KF, Zhong NS. (2016). Impact of air pollution on the burden of chronic respiratory diseases in china: time for urgent action. Lancet 388:1939–51.
  • Health Effects Institute. 2001. Airborne particles and health: HEI epidemiologicevidence. HEI Perspectives: Cambridge, MA: Health Effects Institute.
  • Health Effects Institute. 2002. Understanding the health effects of componentsof the particulate matter mix: progress and next steps. Boston, MA: Health Effects Institute.
  • Hoffman JB, Petriello MC, Hennig B. 2017. Impact of nutrition on pollutant toxicity: an update with new insights into epigenetic regulation. Rev Environ Health 32:65–72.
  • Houstis N, Rosen ED, Lander ES. (2006). Reactive oxygen species have a causal role in multiple forms of insulin resistance. Nature 440:944–8.
  • Hutcheson R, Rocic P. (2012). The metabolic syndrome, oxidative stress, environment, and cardiovascular disease: the great exploration. Exp Diabetes Res 2012:271028.
  • Kim JY, Kim D, Park K, et al. (2017). Highly palatable food access during adolescence increased anxiety-/depression-like behaviors in male, but not in female, rats. Nutr Neurosci 1:9.
  • Lakey PS, Berkemeier T, Tong H, et al. (2016). Chemical exposure-response relationship between air pollutants and reactive oxygen species in the human respiratory tract. Sci Rep 6:32916.
  • Leigh SJ, Morris MJ. 2016. The role of reward circuitry and food addiction in the obesity epidemic: an update. Biol Psychol. 131:31–42.
  • Loomis D, Grosse Y, Lauby-Secretan B, et al. (2013). The carcinogenicity of outdoor air pollution. Lancet Oncol 14:1262–3.
  • Magnani ND, Marchini T, Tasat DR, et al. (2011). Lung oxidative metabolism after exposure to ambient particles. Biochem Biophys Res Commun 412:667–72.
  • Mannucci PM, Harari S, Martinelli I, Franchini M. (2015). Effects on health of air pollution: a narrative review. Intern Emerg Med 10:657–62.
  • Marklund S, Marklund G. (1974). Involvement of the superoxide anion radical in the autoxidation of pyrogallol and a convenient assay for superoxide dismutase. Eur J Biochem 47:469–74.
  • Marques de Mattos A, Marino LV, Ovidio PP, et al. (2012). Protein oxidative stress and dyslipidemia in dialysis patients. Ther Apher Dial 16:68–74.
  • Mazzoli-Rocha F, Fernandes S, Einicker-Lamas M, Zin WA. (2010). Roles of oxidative stress in signaling and inflammation induced by particulate matter. Cell Biol Toxicol 26:481–98.
  • Medeiros N, Rivero DH, Kasahara DI, et al. (2004). Acute pulmonary and hematological effects of two types of particle surrogates are influenced by their elemental composition. Environ Res 95:62–70.
  • Mellor DD, Sathyapalan T, Kilpatrick ES, et al. (2010). High-cocoa polyphenol-rich chocolate improves hdl cholesterol in type 2 diabetes patients. Diabet Med 27:1318–21.
  • Mursu J, Voutilainen S, Nurmi T, et al. (2004). Dark chocolate consumption increases hdl cholesterol concentration and chocolate fatty acids may inhibit lipid peroxidation in healthy humans. Free Radic Biol Med 37:1351–9.
  • Møller P, Jacobsen NR, Folkmann JK, et al. (2010). Role of oxidative damage in toxicity of particulates. Free Radic Res 44:1–46.
  • Narukawa M. (2018). Physiological responses to taste signals of functional food components. Biosci Biotechnol Biochem 82:200–6.
  • National Research Council (US) Subcommittee on Laboratory Animal Nutrition. 1995. Nutrient requirements of laboratory animals: fourth revised edition. Washington, DC: National Academies Press.
  • National Research Council (US) Committee for the Update of the Guide for the Care and Use of Laboratory Animals. 2011. Guide for the care and use of laboratory animals. Washington, DC: National Academies Press.
  • Øvrevik J, Refsnes M, Låg M, et al. (2015). Activation of proinflammatory responses in cells of the airway mucosa by particulate matter: oxidant- and non-oxidant-mediated triggering mechanisms. Biomolecules 5:1399–440.
  • Perticone F, Ceravolo R, Candigliota M, et al. (2001). Obesity and body fat distribution induce endothelial dysfunction by oxidative stress: protective effect of vitamin c. Diabetes 50:159–65.
  • Ponticiello BG, Capozzella A, Di Giorgio V, et al. (2015). Overweight and urban pollution: preliminary results. Sci Total Environ 518-519:61–4.
  • Raaschou-Nielsen O, Andersen ZJ, Beelen R, et al. (2013). Air pollution and lung cancer incidence in 17 european cohorts: prospective analyses from the european study of cohorts for air pollution effects (escape). Lancet Oncol 14:813–22.
  • Rani V, Deep G, Singh RK, et al. (2016). Oxidative stress and metabolic disorders: pathogenesis and therapeutic strategies. Life Sci 148:183–93.
  • Rhoden CR, Wellenius GA, Ghelfi E, et al. (2005). Pm-induced cardiac oxidative stress and dysfunction are mediated by autonomic stimulation. Biochim Biophys Acta 1725:305–13.
  • Rückerl R, Schneider A, Breitner S, et al. (2011). Health effects of particulate air pollution: a review of epidemiological evidence. Inhal Toxicol 23:555–92.
  • Southam DS, Dolovich M, O'Byrne PM, Inman MD. (2002). Distribution of intranasal instillations in mice: effects of volume, time, body position, and anesthesia. Am J Physiol Lung Cell Mol Physiol 282:L833–9.
  • Teegarden SL, Scott AN, Bale TL. (2009). Early life exposure to a high fat diet promotes long-term changes in dietary preferences and central reward signaling. Neuroscience 162:924–32.
  • Thayer KA, Heindel JJ, Bucher JR, Gallo MA. (2012). Role of environmental chemicals in diabetes and obesity: a national toxicology program workshop review. Environ Health Perspect 120:779–89.
  • Tokede OA, Gaziano JM, Djoussé L. (2011). Effects of cocoa products/dark chocolate on serum lipids: a meta-analysis. Eur J Clin Nutr 65:879–86.
  • Urakawa H, Katsuki A, Sumida Y, et al. (2003). Oxidative stress is associated with adiposity and insulin resistance in men. J Clin Endocrinol Metab 88:4673–6.
  • Valavanidis A, Vlachogianni T, Fiotakis K, Loridas S. (2013). Pulmonary oxidative stress, inflammation and cancer: respirable particulate matter, fibrous dusts and ozone as major causes of lung carcinogenesis through reactive oxygen species mechanisms. Int J Environ Res Public Health 10:3886–907.
  • Vieira JL, Macedo FY, Benjo AM, et al. (2017). Systemic effects of controlled exposure to diesel exhaust: a meta-analysis from randomized controlled trials. Ann Med 49:165–75.
  • Viggiano E, Mollica MP, Lionetti L, et al. (2016). Effects of an high-fat diet enriched in lard or in fish oil on the hypothalamic amp-activated protein kinase and inflammatory mediators. Front Cell Neurosci 10:150.
  • Wallwork RS, Colicino E, Zhong J, et al. (2017). Ambient fine particulate matter, outdoor temperature, and risk of metabolic syndrome. Am J Epidemiol 185:30–9.
  • Wang X, Jiang S, Liu Y, et al. (2017). Comprehensive pulmonary metabolome responses to intratracheal instillation of airborne fine particulate matter in rats. Sci Total Environ 592:41–50.
  • Waterhouse AL, Shirley JR, Donovan JL. (1996). Antioxidants in chocolate. Lancet 348:834.
  • Williams LM. (2012). Hypothalamic dysfunction in obesity. Proc Nutr Soc 71:521–33.
  • Winterbourn CC. (1995). Toxicity of iron and hydrogen peroxide: the fenton reaction. Toxicol Lett 82-83:969–74.
  • Wollgast J, Anklam E. (2000a). Polyphenols in chocolate: is there a contribution to human health?. Food Res Int 33: 449–59.
  • Wollgast J, Anklam E. (2000b). Review on polyphenols in theobroma cacao: changes in composition during the manufacture of chocolate and methodology for identification and quantification. Food Res Int 33: 423–47.
  • World Health Organization. 2005. Air quality guidelines: global update 2005. Copenhagem: WHO Regional Office for Europe.
  • Xu Q, Wang S, Guo Y, et al. (2017). Acute exposure to fine particulate matter and cardiovascular hospital emergency room visits in beijing, china. Environ Pollut 220:317–27.
  • Zanchi AC, Venturini CD, Saiki M, et al. (2008). Chronic nasal instillation of residual-oil fly ash (rofa) induces brain lipid peroxidation and behavioral changes in rats. Inhal Toxicol 20:795–800.
  • Zanchi AC, Fagundes LS, Barbosa F, et al. (2010a). Pre and post-natal exposure to ambient level of air pollution impairs memory of rats: the role of oxidative stress. Inhal Toxicol 22:910–8.
  • Zanchi AC, Saiki M, Saldiva PH, et al. (2010b). Hippocampus lipid peroxidation induced by residual oil fly ash intranasal instillation versus habituation to the open field. Inhal Toxicol 22:84–8.
  • Zeeni N, Dagher-Hamalian C, Dimassi H, Faour WH. (2015). Cafeteria diet-fed mice is a pertinent model of obesity-induced organ damage: a potential role of inflammation. Inflamm Res 64:501–12.
  • Zheng XY, Ding H, Jiang LN, et al. (2015). Association between air pollutants and asthma emergency room visits and hospital admissions in time series studies: a systematic review and meta-analysis. PLoS One 10:e0138146.

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