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Science 28 August 1992: Vol. 257. no. 5074, pp. 1220 - 1224 DOI: 10.1126/science.1355616
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Articles
Science, Vol 257, Issue 5074, 1220-1224
Copyright © 1992 by American Association for the Advancement of Science
Protein oxidation and aging
ER Stadtman
Laboratory of Biochemistry, National Heart, Lung, and Blood Institute, National Institutes of Health, Bethesda, MD 20892.
A number of systems that generate oxygen free radicals catalyze the oxidative modification of proteins. Such modifications mark enzymes for degradation by cytosolic neutral alkaline proteases. Protein oxidation contributes to the pool of damaged enzymes, which increases in size during aging and in various pathological states. The age-related increase in amounts of oxidized protein may reflect the age-dependent accumulation of unrepaired DNA damage that, in a random manner, affects the concentrations or activities of numerous factors that govern the rates of protein oxidation and the degradation of oxidized protein.
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- Asymmetric Inheritance of Oxidatively Damaged Proteins During Cytokinesis.
- H. Aguilaniu, L. Gustafsson, M. Rigoulet, and T. Nystrom (2003)
Science
299, 1751-1753
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- Age-related Base Excision Repair Activity in Mouse Brain and Liver Nuclear Extracts.
- G. W. Intano, E. J. Cho, C. A. McMahan, and C. A. Walter (2003)
J. Gerontol. A Biol. Sci. Med. Sci.
58, B205-211
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- Role of the Streptococcus agalactiae ClpP serine protease in heat-induced stress defence and growth arrest.
- S. Nair, C. Poyart, J.-L. Beretti, H. Veiga-Fernandes, P. Berche, and P. Trieu-Cuot (2003)
Microbiology
149, 407-417
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- How does calorie restriction work?.
- J. Koubova and L. Guarente (2003)
Genes & Dev.
17, 313-321
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- Oxidative stress in HIV demented patients and protection ex vivo with novel antioxidants.
- J. Turchan, C.B. Pocernich, C. Gairola, A. Chauhan, G. Schifitto, D.A. Butterfield, S. Buch, O. Narayan, A. Sinai, J. Geiger, et al. (2003)
Neurology
60, 307-314
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- Global Role for ClpP-Containing Proteases in Stationary-Phase Adaptation of Escherichia coli.
- D. Weichart, N. Querfurth, M. Dreger, and R. Hengge-Aronis (2003)
J. Bacteriol.
185, 115-125
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- Global Loss of Na,K-ATPase and Its Nitric Oxide-Mediated Regulation in a Transgenic Mouse Model of Amyotrophic Lateral Sclerosis.
- D. Z. Ellis, J. Rabe, and K. J. Sweadner (2003)
J. Neurosci.
23, 43-51
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- Covalent Modification of Epithelial Fatty Acid-binding Protein by 4-Hydroxynonenal in Vitro and in Vivo. EVIDENCE FOR A ROLE IN ANTIOXIDANT BIOLOGY.
- A. Bennaars-Eiden, L. Higgins, A. V. Hertzel, R. J. Kapphahn, D. A. Ferrington, and D. A. Bernlohr (2002)
J. Biol. Chem.
277, 50693-50702
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- Lipid Peroxidation and the Aging Process.
- D. Pratic̣ (2002)
Sci. Aging Knowl. Environ.
2002, re5-5
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- Role of Reactive Oxygen Species in Cells Overexpressing Manganese Superoxide Dismutase: Mechanism for Induction of Radioresistance.
- Y. Takada, M. Hachiya, S.-H. Park, Y. Osawa, T. Ozawa, and M. Akashi (2002)
Mol. Cancer Res.
1, 137-146
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- Lycopene, Tomatoes, and the Prevention of Coronary Heart Disease.
- A. V. Rao (2002)
Experimental Biology and Medicine
227, 908-913
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- Setting a Trap for Aging-Related Genes in Drosophila.
- J. Tower (2002)
Sci. Aging Knowl. Environ.
2002, pe15-15
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- Oxidative Stress, Mitochondrial DNA Mutation, and Impairment of Antioxidant Enzymes in Aging.
- Y.-H. Wei and H.-C. Lee (2002)
Experimental Biology and Medicine
227, 671-682
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- Ageing-associated aberration in meiosis of oocytes from senescence-accelerated mice.
- L. Liu and D. L. Keefe (2002)
Hum. Reprod.
17, 2678-2685
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- Exposure of Yeast Cells to Anoxia Induces Transient Oxidative Stress. IMPLICATIONS FOR THE INDUCTION OF HYPOXIC GENES.
- R. Dirmeier, K. M. O'Brien, M. Engle, A. Dodd, E. Spears, and R. O. Poyton (2002)
J. Biol. Chem.
277, 34773-34784
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- Thiolation of Protein-bound Carcinogenic Aldehyde. AN ELECTROPHILIC ACROLEIN-LYSINE ADDUCT THAT COVALENTLY BINDS TO THIOLS.
- A. Furuhata, M. Nakamura, T. Osawa, and K. Uchida (2002)
J. Biol. Chem.
277, 27919-27926
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- The mitochondrial DNA polymerase as a target of oxidative damage.
- M. A. Graziewicz, B. J. Day, and W. C. Copeland (2002)
Nucleic Acids Res.
30, 2817-2824
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- Oxidative stress inactivates the human DNA mismatch repair system.
- C. L. Chang, G. Marra, D. P. Chauhan, H. T. Ha, D. K. Chang, L. Ricciardiello, A. Randolph, J. M. Carethers, and C. R. Boland (2002)
Am J Physiol Cell Physiol
283, C148-C154
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