Electrochemical oxidation of ochratoxin A: Correlation with 4-chlorophenol

被引:45
作者
Calcutt, MW [1 ]
Gillman, IG [1 ]
Noftle, RE [1 ]
Manderville, RA [1 ]
机构
[1] Wake Forest Univ, Dept Chem, Winston Salem, NC 27109 USA
关键词
D O I
10.1021/tx015516q
中图分类号
R914 [药物化学];
学科分类号
100701 ;
摘要
Ochratoxin A (OTA, 1A) is a mycotoxin implicated in human kidney carcinogenesis, in which oxidative activation is believed to play a key role. To gain an understanding of the oxidative behavior of the toxin, we have carried out an electrochemical study and have observed a direct correlation between the electrochemistry of OTA and 4-chlorophenol (4-ClPhOH). Cyclic voltammetry (CV) of OTA in acetonitrile (MeCN) showed that the toxin exhibits an irreversible oxidative half-peak potential (E-p/2) of 1.81 V vs saturated calomel electrode (SCE); the corresponding value for 4-ClPhOH is 1.59 V. For both compounds, subsequent scans revealed the appearance of the respective hydroquinone/benzoquinone couple, which formed from the oxidation of the parent para-chlorophenol moiety. The hydroquinone of OTA (OTHQ, 2) exhibited E-p/2 = 1.21 V in MeCN. Deprotonation of OTA to form the phenolate (OTA(-)) lowered the potential to E-p/2 = 1.0 V in MeCN. However, from the oxidation of OTA(-), no evidence for the OTHQ(2)/OTQ(3) redox couple was found. In aqueous phosphate buffer (pH 6-8), the electrochemical behavior of OTA mimicked that observed for OTA- in MeCN; E-p/2 was similar to0.8 V vs SCE and subsequent scans did not generate the OTHQ/OTQ redox couple. From capillary electrophoresis (CE), a diffusion coefficient (D) of 0.48 x 10(-5) cm(2) s(-1) was determined for OTA in phosphate buffer, pH 7.0. Combining this value with electrochemical data suggested that OTA undergoes a 1H(+)/1e oxidation in aqueous media. The biological implications of these findings with respect to the oxidative metabolism of OTA, and other chlorinated phenols, are discussed.
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页码:1266 / 1272
页数:7
相关论文
共 51 条
[21]   Oxidative damage and stress response from ochratoxin A exposure in rats [J].
Gautier, JC ;
Holzhaeuser, D ;
Markovic, J ;
Gremaud, E ;
Schilter, B ;
Turesky, RJ .
FREE RADICAL BIOLOGY AND MEDICINE, 2001, 30 (10) :1089-1098
[22]   Metabolism of ochratoxin A: Absence of formation of genotoxic derivatives by human and rat enzymes [J].
Gautier, JC ;
Richoz, J ;
Welti, DH ;
Markovic, J ;
Gremaud, E ;
Guengerich, FP ;
Turesky, RJ .
CHEMICAL RESEARCH IN TOXICOLOGY, 2001, 14 (01) :34-45
[23]   Ochratoxin A acts as a photoactivatable DNA cleaving agent [J].
Gillman, IG ;
Yezek, JM ;
Manderville, RA .
CHEMICAL COMMUNICATIONS, 1998, (06) :647-648
[24]   Oxidation of ochratoxin A by an Fe-porphyrin system: Model for enzymatic activation and DNA cleavage [J].
Gillman, IG ;
Clark, TN ;
Manderville, RA .
CHEMICAL RESEARCH IN TOXICOLOGY, 1999, 12 (11) :1066-1076
[25]  
GOSSER DK, 1993, CYCLIC VOLTAMMETRY S, P71
[26]   Retinol, ascorbic acid and alpha-tocopherol prevent DNA adduct formation in mice treated with the mycotoxins ochratoxin A and zearalenone [J].
Grosse, Y ;
ChekirGhedira, L ;
Huc, A ;
ObrechtPflumio, S ;
Dirheimer, G ;
Bacha, H ;
PfohlLeszkowicz, A .
CANCER LETTERS, 1997, 114 (1-2) :225-229
[27]   FORMATION OF OCHRATOXIN-A METABOLITES AND DNA-ADDUCTS IN MONKEY KIDNEY-CELLS [J].
GROSSE, Y ;
BAUDRIMONT, I ;
CASTEGNARO, M ;
BETBEDER, AM ;
CREPPY, EE ;
DIRHEIMER, G ;
PFOHLLESZKOWICZ, A .
CHEMICO-BIOLOGICAL INTERACTIONS, 1995, 95 (1-2) :175-187
[28]  
Hammerich O, 1991, ORGANIC ELECTROCHEMI, P615
[29]   METABOLISM OF OCHRATOXIN-A BY PRIMARY CULTURES OF RAT HEPATOCYTES [J].
HANSEN, CE ;
DUELAND, S ;
DREVON, CA ;
STORMER, FC .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 1982, 43 (06) :1267-1271
[30]  
INT AGCY RES CANC, 1993, IARC MONOG EVAL CARC, V56, P489