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小鼠谷胱甘肽S-转移酶YfYf的初速率动力学。存在依他尼酸变构位点的证据。

The initial-rate kinetics of mouse glutathione S-transferase YfYf. Evidence for an allosteric site for ethacrynic acid.

作者信息

Phillips M F, Mantle T J

机构信息

Department of Biochemistry, Trinity College, Dublin, Ireland.

出版信息

Biochem J. 1991 May 1;275 ( Pt 3)(Pt 3):703-9. doi: 10.1042/bj2750703.

Abstract

Mouse glutathione S-transferase GST YfYf (an orthologue of GST P or 7-7 in the rat and of GST pi in the human) was found to have a subunit Mr of 24,500 and cross-reacted with anti-(rat GST YfYf). N-Terminal analysis showed a close similarity to the rat, human and bovine orthologues. On isoelectric focusing the native enzyme had a pI of 8.3 and a pI of 7.3 in the presence of urea. Initial-rate studies with 1-chloro-2,4-dinitrobenzene (CDNB) and GSH as substrates and inhibition studies with the product of the enzyme-catalysed conjugation of CDNB and GSH, S-(2,4-dinitrophenyl)glutathione, indicated a rapid-equilibrium random mechanism for the enzyme. The diuretic drug ethacrynic acid was found to be simultaneously a competitive inhibitor and an uncompetitive activator of the enzyme (with CDNB as the substrate whose concentration was varied). By using a computer simulation program (EKPLOT) a model was developed that would explain the experimental data. It is proposed that ethacrynic acid can compete with CDNB at the active site but simultaneously bind to an allosteric site on the enzyme, causing an elevation in the Vmax. for the conjugation of CDNB and GSH. The implications of such an activation mechanism for an enzyme potentially conjugating a range of xenobiotic compounds are discussed.

摘要

小鼠谷胱甘肽S-转移酶GST YfYf(大鼠GST P或7-7以及人类GST pi的同源物)被发现其亚基分子量为24,500,并与抗(大鼠GST YfYf)发生交叉反应。N端分析表明它与大鼠、人类和牛的同源物非常相似。在等电聚焦时,天然酶的pI为8.3,在有尿素存在时pI为7.3。以1-氯-2,4-二硝基苯(CDNB)和谷胱甘肽(GSH)为底物的初速率研究以及以CDNB与GSH酶催化结合产物S-(2,4-二硝基苯基)谷胱甘肽进行的抑制研究表明该酶的机制为快速平衡随机机制。发现利尿药依他尼酸同时是该酶的竞争性抑制剂和非竞争性激活剂(以浓度可变的CDNB为底物)。通过使用计算机模拟程序(EKPLOT)建立了一个可以解释实验数据的模型。有人提出依他尼酸可以在活性位点与CDNB竞争,但同时结合到酶的变构位点,导致CDNB与GSH结合反应的Vmax升高。讨论了这种激活机制对于一种可能结合一系列外源化合物的酶的意义。

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