首页> 外文期刊>Journal of Agricultural and Food Chemistry >Diphenol activation of the monophenolase and diphenolase activities of field bean (Dolichos lablab) polyphenol oxidase
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Diphenol activation of the monophenolase and diphenolase activities of field bean (Dolichos lablab) polyphenol oxidase

机译:田豆(Dolichos lablab)多酚氧化酶的单酚酶和双酚酶活性的双酚活化

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This paper reports a study on the hydroxylation of ferulic acid and tyrosine by field bean (Dolichas lablab) polyphenol oxidase, a reaction that does not take place without the addition of catechol. A lag period similar to the characteristic lag of tyrosinase activity was observed, the length of which decreased with increasing catechol concentration and increased with increasing ferulic acid concentration. The activation constant K-a of,catechol for ferulic acid hydroxylation reaction was 5 mM. The kinetic parameters of field bean polyphenol oxidase toward ferulic acid and tyrosine were evaluated in the presence of catechol. 4-Methyl catechol; L-dihydroxyphenylalanine, pyrogallol, and 2,3,4-trihydroxybenzoic acid, substrates With high binding affinity to field bean polyphenol oxidase, could stimulate this hydroxylation reaction. In contrast, diphenols such as protocatechuic acid, gallic acid, chloro genic acid, and caffeic acid, which were not substrates for the oxidation reaction, were unable to bring about this activation. It is most likely that only o-diphenols that are substrates for the diphenolase serve as cosubstrates by donating electrons at the active site for the monophenolase activity. The reaction mechanism for this' activation is consistent with that proposed for tyrosinase (Sanchez-Ferrer, A.; Rodriguez-Lopez, J. N.; Garcia-Canovas, F.; Garcia-Carmona, F. Biochim. Biophys. Acta 1995, 1247, 1-11). The presence of o-diphenols, viz. catechol, L-dihydroxyphenylalanine, and 4-methyl catechol, is also necessary for the oxidation of the diphenols, caffeic acid, and catechin to their quinones by the field bean, polyphenol oxidase. This oxidation reaction occurs immediately with no lag period and does not occur without the addition of diphenol. The kinetic parameters for caffeic acid (Km = 0.08 mM, V-max = 32440 u/mg) in the presence of catechol and the activation constant Ka of catechol (4.6 mM) for this reaction were enumerated. The absence of a lag period for this reaction indicates that the diphenol mechanism of diphenolase activation differs from the way in which the same o-diphenols activate the monophenolase activity.
机译:本文报道了田豆(Dolichas lablab)多酚氧化酶对阿魏酸和酪氨酸羟基化的研究,该反应在不添加邻苯二酚的情况下不会发生。观察到与酪氨酸酶活性的特征性滞后相似的滞后期,其长度随着儿茶酚浓度的增加而减少,并随着阿魏酸浓度的增加而增加。阿魏酸羟化反应的邻苯二酚的活化常数K-a为5 mM。在邻苯二酚的存在下,评估了田间豆多酚氧化酶对阿魏酸和酪氨酸的动力学参数。 4-甲基邻苯二酚;对田豆多酚氧化酶具有高结合亲和力的底物L-二羟基苯丙氨酸,邻苯三酚和2,3,4-三羟基苯甲酸可以刺激这种羟基化反应。相反,不是氧化反应的底物的原儿茶酸,没食子酸,绿原酸和咖啡酸等二酚不能引起这种活化。最有可能的是,只有作为双酚酶底物的邻二酚通过在单酚酶活性的活性位点上提供电子来充当共底物。此活化的反应机理与酪氨酸酶的反应机理是一致的(Sanchez-Ferrer,A .; Rodriguez-Lopez,JN; Garcia-Canovas,F .; Garcia-Carmona,F.Biochim.Biophys.Acta 1995,1247, 1-11)。邻二酚的存在,即。儿茶酚,多酚氧化酶将二酚,咖啡酸和儿茶素氧化为它们的醌,还需要儿茶酚,L-二羟基苯丙氨酸和4-甲基邻苯二酚。该氧化反应没有滞后时间立即发生,并且在没有添加二酚的情况下不会发生。列举了在邻苯二酚存在下咖啡酸的动力学参数(Km = 0.08 mM,V-max = 32440 u / mg)和该反应的邻苯二酚活化常数Ka(4.6 mM)。该反应没有滞后时间,表明双酚酶活化的双酚机理不同于相同的邻二酚活化单酚酶活性的方式。

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