Superoxide free radical generation by Amadori compounds: The role of acyclic forms and metal ions

被引:79
作者
Mossine, VV
Linetsky, M
Glinsky, GV
Ortwerth, BJ
Feather, MS
机构
[1] Univ Missouri, Dept Biochem, Columbia, MO 65211 USA
[2] Univ Missouri, Dept Ophthalmol, Columbia, MO 65211 USA
关键词
D O I
10.1021/tx980209e
中图分类号
R914 [药物化学];
学科分类号
100701 ;
摘要
Generation of oxygen free radicals by glycated proteins is widely believed to be one of the causes of oxidative stress in diabetes and aging. Metal ion catalysis is regarded as an essential part of the oxidative mechanism. In this work, we also considered an alternative "metal-free" superoxide radical formation by a number of fructose-amino acids (Amadori compounds) derived from glycine and lysine, which represent the simplest models for early glycated proteins. In the superoxide dismutase-dependent cytochrome c assay, 1 mM Chelex-treated aqueous solutions of monofructose-amino acids 4-6 generated 0.9-3.6 x 10(-10) M s(-1) O-2(.-) at PW 7 Surprisingly, the rates of superoxide radical formation in the solutions of difructose-amino acids 7-9 were significantly higher (0.75-5.8 x 10(-9) M s(-1) O-2(.-)). The percentage of acyclic sugar anomers (less than or equal to 0.8-85%) and their "enolization" rate constants (5 x 10(-6) to 2 x 10(-3) s(-1)) varied broadly for the compounds studied and positively correlated with the rates of superoxide radical formation. The presence of Cu2+ markedly increased the rate of superoxide radical formation at metal concentrations higher than 1 mu M, while Fe3+ did not accelerate the reaction even at 100 mu M. Therefore, in addition to the metal ion-catalyzed oxygen free radical formation, metal-free enol oxidation of fructosyl groups on glycated amino acid residues may contribute to the generation of oxygen free radicals and their subsequent oxidative damage to proteins.
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页码:230 / 236
页数:7
相关论文
共 36 条
[11]   OXYGENATION OF ENAMINES . KETONIZATION AT BETA POSITION TO GIVE ALPHA-AMINO KETONES [J].
JERUSSI, RA .
JOURNAL OF ORGANIC CHEMISTRY, 1969, 34 (11) :3648-&
[12]   AUTOXIDATIVE DEGRADATION OF AMADORI COMPOUNDS IN THE PRESENCE OF COPPER-ION [J].
KAWAKISHI, S ;
TSUNEHIRO, J ;
UCHIDA, K .
CARBOHYDRATE RESEARCH, 1991, 211 (01) :167-171
[13]   DETECTION OF 3-DEOXYFRUCTOSE AND 3-DEOXYGLUCOSONE IN HUMAN URINE AND PLASMA - EVIDENCE FOR INTERMEDIATE STAGES OF THE MAILLARD REACTION INVIVO [J].
KNECHT, KJ ;
FEATHER, MS ;
BAYNES, JW .
ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 1992, 294 (01) :130-137
[14]   Program DYNAFIT for the analysis of enzyme kinetic data: Application to HIV proteinase [J].
Kuzmic, P .
ANALYTICAL BIOCHEMISTRY, 1996, 237 (02) :260-273
[15]   AN IMPROVED PREPARATION OF 3-DEOXY-D-ERYTHRO-HEXOS-2-ULOSE VIA THE BIS(BENZOYLHYDRAZONE) AND SOME RELATED CONSTITUTIONAL STUDIES [J].
MADSON, MA ;
FEATHER, MS .
CARBOHYDRATE RESEARCH, 1981, 94 (02) :183-191
[16]   AUTOXIDATION OF ENAMINES AND SCHIFF BASES OF ALPHA BETA-UNSATURATED KETONES . A NEW SYNTHESIS OF UNSATURATED 1,4-DIONES [J].
MALHOTRA, SK ;
HOSTYNEK, JJ ;
LUNDIN, AF .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1968, 90 (23) :6565-&
[17]   DETAILED TAUTOMERIC EQUILIBRIUM OF AQUEOUS D-GLUCOSE - OBSERVATION OF 6 TAUTOMERS BY ULTRAHIGH RESOLUTION C-13 NMR [J].
MAPLE, SR ;
ALLERHAND, A .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1987, 109 (10) :3168-3169
[18]  
MARKERT M, 1984, METHOD ENZYMOL, V105, P358
[19]  
Martell A.E., 1975, CRITICAL STABILITY C, P1