Chemical determination of oxidative DNA damage by gas chromatography-mass spectrometry.
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[1] M. Dizdaroglu,et al. Substrate specificity of the Escherichia coli endonuclease III: excision of thymine- and cytosine-derived lesions in DNA produced by radiation-generated free radicals. , 1993, Biochemistry.
[2] M. Dizdaroglu. Quantitative determination of oxidative base damage in DNA by stable isotope‐dilution mass spectrometry , 1993, FEBS letters.
[3] M. Dizdaroglu. Oxidative damage to DNA in mammalian chromatin. , 1992, Mutation research.
[4] C. Menck,et al. Singlet oxygen induced DNA damage. , 1992, Mutation research.
[5] E. Gajewski,et al. Substrate specificity of the Escherichia coli Fpg protein (formamidopyrimidine-DNA glycosylase): excision of purine lesions in DNA produced by ionizing radiation or photosensitization. , 1992, Biochemistry.
[6] M. Dizdaroglu,et al. DNA Base Damage in Chromatin of γ-Irradiated Cultured Human Cells , 1992 .
[7] K. Frenkel. Carcinogen-mediated oxidant formation and oxidative DNA damage. , 1992, Pharmacology & therapeutics.
[8] Z. Djuric,et al. Quantitation of 5-(hydroxymethyl)uracil in DNA by gas chromatography with mass spectral detection. , 1991, Chemical research in toxicology.
[9] Barry Halliwell,et al. DNA damage by oxygen‐derived species Its mechanism and measurement in mammalian systems , 1991, FEBS letters.
[10] M. Dizdaroglu. Chemical determination of free radical-induced damage to DNA. , 1991, Free radical biology & medicine.
[11] C. Sonntag,et al. Direct evidence for the formation of thymine radical cations from the reaction of sulfate (SO4.cntdot.-) with thymine derivatives: A pulse radiolysis study with optical and conductance detection , 1990 .
[12] J. Doroshow,et al. Base modifications in plasmid DNA caused by potassium permanganate. , 1990, Archives of biochemistry and biophysics.
[13] P. Crain,et al. Mass spectrometric techniques in nucleic acid research , 1990 .
[14] R. Floyd,et al. Methylene blue plus light mediates 8-hydroxyguanine formation in DNA. , 1989, Archives of biochemistry and biophysics.
[15] Steen Steenken,et al. Purine bases, nucleosides, and nucleotides: aqueous solution redox chemistry and transformation reactions of their radical cations and e- and OH adducts , 1989 .
[16] E. Gajewski,et al. Structure of a hydroxyl radical induced DNA-protein cross-link involving thymine and tyrosine in nucleohistone. , 1989, Biochemistry.
[17] E. Gajewski,et al. Quantitative measurement of radiation-induced base products in DNA using gas chromatography-mass spectrometry. , 1989, Radiation research.
[18] M. Dizdaroglu,et al. Effect of DNA conformation on the hydroxyl radical-induced formation of 8,5'-cyclopurine 2'-deoxyribonucleoside residues in DNA. , 1988, International journal of radiation biology.
[19] E. Gajewski,et al. Structure of hydroxyl radical-induced DNA-protein crosslinks in calf thymus nucleohistone in vitro. , 1988, International journal of radiation biology.
[20] C. Sonntag,et al. The chemical basis of radiation biology , 1987 .
[21] M. Lipinski,et al. Lymphocyte subsets in tumour of patients with undifferentiated nasopharyngeal carcinoma: presence of lymphocytes with the phenotype of activated T cells. , 1987, British Journal of Cancer.
[22] M. Dizdaroglu. Free-radical-induced formation of an 8,5'-cyclo-2'-deoxyguanosine moiety in deoxyribonucleic acid. , 1986, The Biochemical journal.
[23] M. Dizdaroglu,et al. Characterization of free radical-induced base damage in DNA at biologically relevant levels. , 1986, Analytical biochemistry.
[24] I. Fridovich. Biological effects of the superoxide radical. , 1986, Archives of biochemistry and biophysics.
[25] M. Hagan,et al. Formation of cytosine glycol and 5,6-dihydroxycytosine in deoxyribonucleic acid on treatment with osmium tetroxide. , 1986, The Biochemical journal.
[26] M. Dizdaroglu. Characterization of free radical-induced damage to DNA by the combined use of enzymatic hydrolysis and gas chromatography-mass spectrometry. , 1986, Journal of chromatography.
[27] B. Halliwell,et al. Free radicals in biology and medicine , 1985 .
[28] M. Dizdaroglu,et al. Application of capillary gas chromatography-mass spectrometry to chemical characterization of radiation-induced base damage of DNA: implications for assessing DNA repair processes. , 1985, Analytical biochemistry.
[29] J. Watson,et al. Introduction to mass spectrometry , 1985 .
[30] M. Dizdaroglu. The use of capillary gas chromatography-mass spectrometry for identification of radiation-induced DNA base damage and DNA base-amino acid cross-links. , 1984, Journal of chromatography.
[31] M. Quilliam,et al. Sterically crowded trialkylsilyl derivatives for chromatography and mass spectrometry of biologically-important compounds , 1978 .
[32] J. McCloskey,et al. Mass spectra of trimethylsilyl derivatives of pyrimidine and purine bases. , 1972, The Journal of organic chemistry.
[33] J. McCloskey,et al. Mass spectrometry of nucleic acid constituents. Trimethylsilyl derivatives of nucleosides , 1971 .
[34] H. Yuki,et al. Methylene-hydantoin and Related Compounds. I. On the Reaction of Pyruvic Acid and Urea: The Synthesis of 5-Methylene-hydantoin , 1966 .
[35] F. McLafferty. Interpretation of Mass Spectra , 1966 .
[36] G. R. Wyatt,et al. The bases of the nucleic acids of some bacterial and animal viruses: the occurrence of 5-hydroxymethylcytosine. , 1953, The Biochemical journal.
[37] L. Cavalieri,et al. The Ultraviolet Absorption Spectra of Pyrimidines and Purines1 , 1950 .
[38] R. Behrend,et al. Synthese der Harnsäure , 1889 .