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Original Article

Could Oxidative Stress Associate with Age Products in Cataractogenesis?

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Pages 669-675 | Received 17 Mar 2008, Accepted 02 Jun 2008, Published online: 02 Jul 2009

REFERENCES

  • Shah S P, Dineen B, Jadoon Z, Bourne R, Khan M A, Johnson G J, De Stavola B, Gilbert C, Khan M D. Lens opacities in adults in Pakistan: Prevalence and risk factors. Ophthalmic Epidemiol. 2007; 14: 381–389
  • Ulrich P, Cerami A. Protein glycation, diabetes, and aging. Recent Prog Horm Res. 2001; 56: 1–1
  • Bron A J, Brown N AP, Harding J J, Ganea E. The lens and cataract in diabetes. Int Ophthalmol Clin. 1998; 38: 37–37
  • Taylor A, Jacques P F, Epstein E M. Relations among aging, antioxidant status, and cataract. Am J Clin Nutr. 1995; 62: 1439S–1447S
  • Kasper M, Funk R HW. Age-related changes in cells and tissues due to advanced glycation end products (AGEs). Arch Gerontol Geriatr. 2001; 32: 233–243
  • Ahmed N. Advanced glycation end products' role in pathology of diabetic complications. Diab Res Clin Pract. 2005; 67: 3–21
  • Lee A Y, Chung S S. Contributions of polyol pathway to oxidative stress in diabetic cataract. FASEB J. 1999; 13: 23–30
  • Spector A. Oxidative stress-induced cataract: Mechanism of action. FASEB J. 1995; 9: 1173–1182
  • Valenzuela A. The biological significance of malondialdehyde determination in the assessment of tissue oxidative stress. Life Sci. 1991; 48: 301–309
  • Hashim Z, Zarina S. Assessment of paraoxonase activity and lipid peroxidation levels in diabetic and senile subjects suffering from cataract. Clin Biochem. 2007; 40: 705–709
  • Maurya O P, Mohanty L, Bhaduri G, Chandra A. Role of anti-oxidant enzymes superoxide dismutase and catalase in the development of cataract: Study of serum levels in patients with senile and diabetic cataracts. J Indian Med Assoc. 2006; 104: 396–397
  • Gabir M M, Roumain J, Hanson R L, Bennett P H, Dabelea D, Knowler W C, Imperatore G. The 1997 American Diabetes Association and 1999 World Health Organization criteria for hyperglycemia in the diagnosis and prediction of diabetes. Diab Care 2000; 23: 1108–1112
  • Baker H, Frank O, Angelis B, Feingold S. Plasma tocopherol in man at various times after ingesting free or acetylated tocopherol. Nutr Rep Int. 1980; 21: 531–536
  • Ono Y, Aoki S, Ohnishi K, Yasuda T, Kawano K, Tsukada Y. Increased serum levels of advanced glycation end products and diabetic complications. Diab Res Clin Pract. 1998; 41: 131–137
  • Shera S. Prevalence and prevention. Diab Digest. 1998; 12: 7–8
  • Giugliano D, Ceriello A, Paolisso G. Oxidative stress and diabetic vascular complications. Diab Care. 1996; 19: 257–267
  • Kravchuk E A. Free-radical oxidation in the pathogenesis of eye diseases. Vestn Oftalmol 2004; 120: 48–51
  • Suji G, Sivakami S. Glucose, glycation, and aging. Biogerontology 2004; 5: 365–373
  • Doelman C J. Lens lipid peroxides in diabetic cataract. Ann Clin Biochem. 1997; 34: 700–706
  • Donma O, Yorulmaz E, Pekel H, Suyugül N. Blood and lens lipid peroxidation and antioxidant status in normal individuals, senile, and diabetic cataractous patients. Curr Eye Res. 2002; 25: 9–16
  • Agte V V, Tarwadi K V. Combination of diabetes and cataract worsens the oxidative stress and micronutrient status in Indians. Nutrition. 2008; 8, (in press)
  • Zorić L. Parameters of oxidative stress in the lens, aqueous humor, and blood in patients with diabetes and senile cataracts. Srp Arh Celok Lek 2003; 131: 137–142
  • Araki N, Ueno N, Chakrabarti B, Morino Y, Horiuchi S. Immunochemical evidence for the presence of advanced glycation end products in human lens proteins and its positive correlation with aging. J Biol Chem. 1992; 267: 10211–10214
  • Vlassara H, Bucala R, Striker L. Pathogenic effects of advanced glycosylation end products: Biochemical, biologic, and clinical implications for diabetes and aging. Lab Invest 1994; 70: 138–151
  • Turk Z, Mišur I, Turk N. Temporal association between lens protein glycation and cataract development in diabetic rats. Acta Diabetol. 1997; 34: 49–54
  • Zarina S, Zhao H R, Abraham E C. Advanced glycation end products in human senile and diabetic cataractous lenses. Mol Cell Biochem. 2000; 210: 29–34
  • Luthra M, Balasubramania D. Nonenzymatic glycation alters protein structure and stability. A study of two eye lens crystallins. J Biol Chem. 1993; 268: 18119–18127
  • Nagaraj R H, Sell D R, Prabhakaram M, Ortwerth B J, Monnier V M. High correlation between pentosidine protein cross links and pigmentation implicates ascorbate oxidation in human lens senescence and cataractogenesis. Proc Natl Acad Sci USA. 1992; 88: 10257–10261
  • Stitt A W. Advanced glycation: An important pathological event in diabetic and age-related ocular disease. Br J Ophthalmol. 2001; 85: 746–753
  • Tan K C, Shiu S W, Chow W S, Leng L, Bucala R, Betteridge D J. Association between serum levels of soluble receptor for advanced glycation end products and circulating advanced glycation end products in type 2 diabetes. Diabetologia. 2006; 49: 2756–2762
  • Yamagishi S, Adachi H, Nakamura K, Matsui T, Jinnouchi Y, Takenaka K, Takeuchi M, Enomoto M, Furuki K, Hino A, Shigeto Y, Imaizumi T. Positive association between serum levels of advanced glycation end products and the soluble form of receptor for advanced glycation end products in nondiabetic subjects. Metabolism. 2006; 55: 1227–1231
  • Sisková A, Wilhelm J. Role of nonenzymatic glycation and oxidative stress on the development of complicated diabetic cataracts. Cesk Fysiol. 2000; 49: 16–21
  • Dyer D G, Blackledge J A, Thorpe S R, Baynes J W. Formation of pentosidine during nonenzymatic browning of protein by glucose: Identification of glucose and other carbohydrates as possible precursors of pentosidine in vivo. J Biol Chem. 1991; 266: 11654–11660
  • Jono T, Nagai R, Lin X, Ahmed N, Thornalley P J, Takeya M, Horiuchi S. Nepsilon-(carboxymethyl)lysine and 3-DG-imidazolone are major AGE structures in protein modification by 3-deoxyglucosone. J Biochem. 2004; 136: 351–358
  • Cai W, Cao Q, Zhu L, Peppa M, He C, Vlassara H. Oxidative stress-inducing carbonyl compounds from common foods: Novel mediators of cellular dysfunction. Mol Med. 2002; 8: 337–346

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