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Research Article

Strain differences in antioxidants in rat models of cardiovascular disease exposed to ozone

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Pages 54-62 | Received 11 Apr 2014, Accepted 07 Aug 2014, Published online: 15 Dec 2015

References

  • Ames BN, Cathcart R, Schwiers E, Hochstein P. (1981). Uric acid provides an antioxidant defense in humans against oxidant-caused and radical-caused aging and cancer – a hypothesis. Proc Natl Acad Sci USA 78:6858–62
  • Anderson ME. (1985). Determination of glutathione and glutathione disulfide in biological samples. Methods Enzymol 113:548–55
  • Avignon A, Hokayem M, Bisbal C, Lambert K. (2012). Dietary antioxidants: do they have a role to play in the ongoing fight against abnormal glucose metabolism? Nutrition 28:715–21
  • Baldi P, Long AD. (2001). A Bayesian framework for the analysis of microarray expression data: regularized t-test and statistical inferences of gene changes. Bioinformatics 17:509–19
  • Behndig AF, Blomberg A, Helleday R, et al. (2009). Antioxidant responses to acute ozone challenge in the healthy human airway. Inhal Toxicol 21:933–42
  • Bulteau A-L, Ikeda-Saito M, Szweda LI. (2003). Redox-dependent modulation of aconitase activity in intact mitochondria. Biochemistry 42:14846–55
  • Bunnell E, Pacht ER. (1993). Oxidized glutathione is increased in the alveolar fluid of patients with adult respiratory distress syndrome. Am Rev Respir Dis 148:1174–8
  • Chuang GC, Yang Z, Westbrook DG, et al. (2009). Pulmonary ozone exposure induces vascular dysfunction, mitochondrial damage, and atherogenesis. Am J Physiol Lung Cel Mol Physiol 297:L209–16
  • Dubick MA, Heng H, Rucker RB. (1985). Effects of protein deficiency and food restriction on lung ascorbic acid and glutathione in rats exposed to O3. J Nutr 115:1050–6
  • Dye JA, Ledbetter AD, Schladweiler MC, et al. (2015). Whole body plethysmography reveals differential ventilatory responses to ozone in Rat models of cardiovascular disease. Inhal Toxicol. 27(S1):14–25
  • Dye JA, Madden MC, Richards JH, et al. (1999). Ozone effects on airway responsiveness, lung injury, and inflammation. Comparative rat strain and in vivo/in vitro investigations. Inhal Toxicol 11:1015–40
  • Gaffo AL, Edwards NL, Saag KG. (2009). Hyperuricemia and cardiovascular disease: how strong is the evidence for a causal link? Arthritis Res Ther, 11:240
  • Gunnison AF, Hatch GE. (1999). O3-induced inflammation in prepregnant, pregnant, and lactating rats correlates with O3 dose estimated by 18O. Am J Physiol 276:L332–40
  • Gunnison AF, Hatch GE, Crissman K, Bowers A. (1996). Comparative sensitivity of lactating and virgin female rats to ozone-induced pulmonary inflammation. Inhal Toxicol 8:607–23
  • Hatch GE, Slade R, McKee J. (2013). Fate of pathologically bound oxygen resulting from inhalation of labeled ozone in rats. Environ Health Insights 7:43–58
  • Jaskot RH, Charlet EG, Grose EC, et al. (1983). An automated-analysis of glutathione-peroxidase, s-transferase, and reductase-activity in animal tissue. J Anal Toxicol 7:86–8
  • Jorres RA, Holz O, Zachgo W, et al. (2000). The effect of repeated ozone exposures on inflammatory markers in bronchoalveolar lavage fluid and mucosal biopsies. Am J Respir Crit Care Med 161:1855–61
  • Kadiiska MB, Hatch GE, Nyska A, et al. (2011). Biomarkers of Oxidative Stress Study IV: ozone exposure of rats and its effect on antioxidants in plasma and bronchoalveolar lavage fluid. Free Radic Biol Med 51:1636–42
  • Kari F, Hatch G, Slade R, et al. (1997). Dietary restriction mitigates ozone-induced lung inflammation in rats: a role for endogenous antioxidants. Am J Respir Cell Mol Biol 17:740–7
  • Kelly FJ, Blomberg A, Frew A, et al. (1996). Antioxidant kinetics in lung lavage fluid following exposure of humans to nitrogen dioxide. Am J Respir Crit Care Med 154:1700–5
  • Kermani S, Ben-Jebria A, Ultman JS. (2006). Kinetics of ozone reaction with uric acid, ascorbic acid, and glutathione at physiologically relevant conditions. Archiv Biochem Biophys 451:8–16
  • Kodavanti Up, Costa DL, Dreher KL, et al. (1995). Ozone-induced tissue injury and changes in antioxidant homeostasis in normal and ascorbate-deficient guinea pigs. Biochem Pharmacol 50:243–51
  • Kodavanti UP, Russell JC, Costa DL. (2015a). Rat models of cardiometabolic diseases: baseline clinical chemistries, and rationale for their use in examining air pollution health effects. Inhal Toxicol. 27(S1):2–13
  • Kodavanti UP, Ledbetter AD, Thomas RF, et al. (2015b). Variability in ozone-induced pulmonary injury and inflammation in healthy and cardiovascular compromised rat models. Inhal Toxicol. 27(S1):39–59
  • Kutnink MA, Skala JH, Sauberlich HE, Omaye ST. (1985). Simultaneous determination of ascorbic-acid, isoascorbic acid (erythorbic acid) and uric-acid in human-plasma by high-performance liquid-chromatography with amperometric detection. J Liquid Chromatogr 8:31–46
  • Le Blanc S, Villarroel P, Candia V, et al. (2012). Type 2 diabetic patients and their offspring show altered parameters of iron status, oxidative stress and genes related to mitochondrial activity. Biometals 25:725–35
  • Montezano AC, Touyz RM. (2012). Oxidative stress, Noxs, and hypertension: experimental evidence and clinical controversies. Ann Med 44:S2–16
  • Mudway IS, Behndig AF, Helleday R, et al. (2006). Vitamin supplementation does not protect against symptoms in ozone-responsive subjects. Free Radic Biol Med 40:1702–12
  • Mustafa MG. (1990). Biochemical basis of ozone toxicity. Free Radic Biol Med 9:245–65
  • Rahman I, MacNee W. (1996). Role of oxidants/antioxidants in smoking-induced lung diseases. Free Radic Biol Med 21:669–81
  • Simmons RA. (2006). Developmental origins of diabetes: the role of oxidative stress. Free Radic Biol Med 40:917–22
  • Slade R, Crissman K, Norwood J, Hatch G. (1993). Comparison of antioxidant substances in bronchoalveolar lavage cells and fluid from humans, guinea-pigs, and rats. Exp Lung Res 19:469–84
  • Ward WO, Kodavanti UP. (2015a). Left ventricular gene expression profile of healthy and cardiovascular compromised rat models used in air pollution studies. Inhal Toxicol. 27(S1):63–79
  • Ward WO, Kodavanti UP. (2015b). Pulmonary transcriptional response to ozone in healthy and cardiovascular compromised rat models. Inhal Toxicol. 27(S1):93–104
  • Ward WO, Ledbetter AD, Schladweiler MC, Kodavanti UP. (2015). Lung transcriptional profiling: insights into the mechanisms of ozone-induced pulmonary injury in Wistar Kyoto rats. Inhal Toxicol. 27(S1):80–92

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