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Research Article

Antioxidant and hepatoprotective potential of Aegle marmelos Correa. against CCl4-induced oxidative stress and early tumor events

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Pages 320-327 | Received 06 Dec 2007, Accepted 13 Mar 2008, Published online: 01 Apr 2009

References

  • R Olinski, A Siomek, R Rozalski, D Gackowski, M Foksinski, J Guz, T Dziaman, A Szpila, and B Tudek. (2007). Oxidative damage to DNA and antioxidant status in aging and age-related diseases. Acta Biochim Pol 54 (1):11–26.
  • SP Hussain, LJ Hofseth, and CC Harris. (2003). Radical causes of cancer. Nature Rev Cancer 3:276–285.
  • S Orrenius. (2007). Reactive oxygen species in mitochondria-mediated cell death. Drug Metab Rev 39 (2–3):443–455.
  • D Hristozov, V Gadjeva, T Vlaykova, and G Dimitrov. (2001). Evaluation of oxidative stress in patients with cancer. Arch Physiol Biochem 109:331–336.
  • KJ Davies, and P Hochstein. (1982). Ubisemiquinone radicals in liver implications for a mitochondrial Q cycle in vivo. Biochem Biophys Res Commun 107:1292–1299.
  • D Harman. (1994). Free radical theory of aging, increasing the functional life span. Ann N Y Acad Sci 717:1–15.
  • NY Simonian, and JT Coyle. (1996). Oxidative stress in neurodegenerative disease. Annu Rev Pharmacol Toxicol 36:83–106.
  • RF Slater. (1987). Free radicals and tissue injury: Fact and fiction. Br J Cancer 8:5–10.
  • RO Recknagel, EA Glende, JA Dolak, and RL Waller. (1989). Mechanism of CCl4 toxicity. Pharmacol Ther 43:139–154.
  • MG Soni, and HM Mehendale. (1993). Evidence for hepatic failure in the interactive toxicity of chlordecone and carbon tetrachloride. Fundam Appl Toxicol 21:442–450.
  • MI Luster, PP Simeonova, RM Gallucci, A Bruccoleri, ME Blazka, and B Yucesoy. (2001). Role of inflammation in chemical-induced hepatotoxicity. Toxicol Lett 2001 120 (1–3):317–321.
  • NAS (National Academy of Science). Chloroform, carbon tetrachloride and other halomethanes: An Environmental Assessment. Washington, DC: NAS; (1978).
  • DA Stoyanovsky, and AI Cederbaum. (1999). Metabolism of carbon tetra-chloride to trichloromethyl radical: An ESR and HPLC-EC study. Chem Res Toxicol 12:730–736.
  • RO Recknagel, EA GlendeJr., JA Dolak, and RL Waller. (1989). Mechanisms of carbon tetrachloride toxicity. Pharmacol Ther 43:139–154.
  • F Jorquera, and JM Culebras. (1996). Gonz,/∼Lez-Gallego J. Influence of Nutrition on Liver Oxidative Metabolism. Nutrit 12 (6):442–447.
  • T Finkel, and NJ Holbrook. (2000). Oxidants, oxidative stress and biology of ageing. Nature 408:239–247.
  • IT Johnson, G Williamson, and SR Musk. (1994). Anticarcinogenic factors in plant foods: A new class of nutrients. Nutr Rev 7:175–204.
  • LO Dragsted, M Strube, and JC Larsen. (1993). Cancer-protective factors in fruits and vegetables: Biochemical and biological background. Pharmacol Toxicol 72:116–135.
  • KR Kirtikar, BD Basu, an ICS, In: second, editor. Indian Medicinal Plants. Dehradun, India: B/S International Book Distributors; (1935). p 448–502.
  • AK Nadkarni. Dr. KM Nadkarni's Indian Materia Medica., Vol.1Bombay, India: Popular Prakashan Company; (1986). p 45.
  • C Parmar, and MK Kaushal. Aegle marmelos. Wild Fruits. New Delhi, India: Kalyani Publishers; (1982). p 1–5.
  • M Athar, and M Iqbal. (1998). Ferric nitrilotriacetate promotes N-diethylnitrosamine-induced renal tumorigenesis in the rat: Implications for the involvement of oxidative stress. Carcinogenesis 19:1133–1139.
  • DJ Jollow, JR Mitchell, N Zampaglione, and JR Gillette. (1974). Bromobenzene induced liver necrosis: Protective role of glutathione and evidence for 3,4-bromobenzene oxide as the hepatotoxic intermediate. Pharmacol 11:151–169.
  • A Claiborne. Catalase activity. In: RA Greenwald, editor. CRC Handbook of Methods in Oxygen Radical Research. Boca Raton: CRC Press; (1975). p 283–284.
  • WH Habig, MJ Pubst, and WB Jokoby. (1974). GST the first enzymatic step in mercapturic acid formation. J Biol Chem 249:7130–7713.
  • I Carlberg, and B Mannervik. (1975). Glutathione reductase levels in rat brain. J Biol Chem 250:5475–5480.
  • J Mohandas, JJ Marshall, GG Duggin, JS Horvath, and D Tiller. (1984). Differential distribution of glutathione and glutathione related enzymes in rabbit kidney. Cancer Res 44:5086–5091.
  • N Zaheer, KK Tiwari, and PS Krishnan. (1965). Exposure and solubilization of hepatic mitochondrial shunt dehydrogrnases. Arch Biochem Biophys 109:646–648.
  • AM Benson, MJ Hunkeler, and P Talalay. (1980). Increase of NADPH; Quinone reductase activity by dietary antioxidant. Possible role in protection against carcinogenesis and toxicity. Proc Natl Acad Sci USA 77:5216–5220.
  • F Stripe, and E Della Corte. (1969). The regulation of rat liver Xanthine oxidase. J Biol Chem 244:3855–3863.
  • TG O'Brien, RC Simsiman, and RK Boutwell. (1975). Induction of polyamine biosynthesis enzymes in mouse epidermis by tumor promoting agents. Cancer Res 35:1662–1670.
  • JR Wright, HD Colby, and PR Miles. (1981). Cytosolic factors which affect microsomal lipid peroxidation in lung and liver. Arch Biochem Biophys 206:296–304.
  • A Kornberg In: SP Colowick, and NO Kaplan, editors. Lactic dehydrogenase of muscle. In Methods in Enzymology. New York: Academic Press; (1955). p 441–443.
  • S Reitman, and SA Frankel. (1957). Colorimetric method for the determination of serum oxaloacetic and glutamic pyruvic transaminases. Amer J Clin Pathol 28:56–63.
  • KW Giles, and A Myers. (1965). An improved diphenylamine method for the estimation of deoxyribonucleic acid. Nature 206:93.
  • RC Smart, MT Huang, and AH Conney. (1986). Sn1, 1,2;diacylglycerols mimic the effects of TPA in vivo by inducing biochemical changes associated with tumor promotion in mouse epidermis. Carcinogenesis 7:1865–1870.
  • SK Jain. (1994). Ethnobotany and research on medicinal plants in India. Ciba Found Symp 185:153–164. discussion 164-8
  • H Sies, editor.. Antioxidants in Disease, Mechanisms and Therapy New York: Academic Press; (1996).
  • B Halliwell, JMC Gutteridge, and CE Cross. (1992). Free radicals, antioxidants, and human disease: Where are we now?. J Lab Clin Med 119:598–620.
  • LR Ferguson. (1994). Antimutagens as cancer chemopreventive agents in diet. Mutat Res 307:395–410.
  • RF Anderson, LJ Fisher, Y Hara, T Harris, WB Mak, and et al (2001). Green tea catechins partially protect DNA from OH radical-induced strand breaks and base damage through fast chemical repair of DNA radicals. Carcinogenesis 22:1189–1193.
  • G Santana-Rios, GA Orner, A Amantana, C Provost, SY Wu, and RH Dashwood. (2001). Potent antimutagenic activity of white tea in comparison with green tea in the Salmonella assay. Mutat Res 495:61–74.
  • R Lieberman, JA Crowell, ET Hawk, CW Boone, CC Sigman, and GJ Kelloff. (1998). Development of new cancer chemoprevention agents: Role of pharmacokinetic/pharmacodynamic and intermediate endpoint biomarker monitoring. Clin Chem 44:420–427.
  • L Nanxin, and K Michael. (1999). Is NF-κB the sensor of oxidative stress?. FASEB 13:1137–1143.
  • PA Baeuerle, RA Rupec, and HL Pahl. (1996). Reactive oxygen intermediates as second messengers of a general pathogen response. Pathologie Biologie 44:29–35.
  • A Marie-Jose, E Milica, M Mojgan, M Christine, D Sylvia, and et al (2000). Gamma-Glutamyl transpeptidase -dependent glutathione catabolism results in activation of NF-κB. Biochem Biophys Res Commun 276:1062–1067.
  • JP Perchellet, EM Perchellet, HU Gali, and XM Gao. Oxidant Stress and Multistage carcinogenesis. In: H Mukhtar. editor. Skin Cancer: Mechanism & Human Relerence. Boca Raton, FL: CRC Press, Inc. (1995). p 145–180.
  • N Tawfiq, RK Heaney, JA Plumb, GR Fenwick, SR Musk, and G Williamson. (1995). Dietary glucosinolates as blocking agents against carcinogenesis: Glucosinolate breakdown products assessed by induction of quinone reductase activity in murine hepa1c1c7 cells. Carcinogenesis 16 (5):1191–1194.

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