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基于网织红细胞脂氧合酶实验数据的脂氧合酶动力学模型。

A kinetic model for lipoxygenases based on experimental data with the lipoxygenase of reticulocytes.

作者信息

Ludwig P, Holzhütter H G, Colosimo A, Silvestrini M C, Schewe T, Rapoport S M

机构信息

Institute of Biochemistry of the Humboldt University Berlin, German Democratic Republic.

出版信息

Eur J Biochem. 1987 Oct 15;168(2):325-37. doi: 10.1111/j.1432-1033.1987.tb13424.x.

Abstract

A comprehensive kinetic model for lipoxygenase catalysis is proposed which includes the simultaneous occurrence of dioxygenase and hydroperoxidase activities and is based on the assumption of a single binding site for substrate fatty acid and product. The aerobic reaction of purified lipoxygenase from rabbit reticulocytes with 9,12(Z,Z)-octadecadienoic acid (linoleic acid) as substrate was studied. The rate constants and the dissociation constants of this enzyme were calculated for the model from progress curves; the model describes correctly the experimental data. The following kinetic features of the reticulocyte enzyme are assumed to apply generally to lipoxygenases. (a) The enzyme shows autoactivation by its product. (b) The rate-limiting step is the hydrogen abstraction. (c) Both substrate fatty acid and its product are competitive inhibitors of the lipoxygenase. (d) Lowering the oxygen concentration enhances the degree of substrate inhibition, whereas product inhibition is not influenced. (e) If substrate is in excess the oxygen concentration determines the share of dioxygenase and hydroperoxidase activities of the enzyme. As predicted from the model it was found that at low concentrations of oxygen the regio- and stereo-specificities of the dioxygenation are diminished. During the autoactivation phase the steady-state approximation does not hold.

摘要

提出了一种脂氧合酶催化的综合动力学模型,该模型包括双加氧酶和氢过氧化物酶活性的同时发生,并基于底物脂肪酸和产物具有单一结合位点的假设。研究了来自兔网织红细胞的纯化脂氧合酶与9,12(Z,Z)-十八碳二烯酸(亚油酸)作为底物的需氧反应。根据进程曲线为该模型计算了该酶的速率常数和解离常数;该模型正确地描述了实验数据。假定网织红细胞酶的以下动力学特征普遍适用于脂氧合酶。(a) 该酶被其产物自动激活。(b) 限速步骤是氢的提取。(c) 底物脂肪酸及其产物都是脂氧合酶的竞争性抑制剂。(d) 降低氧浓度会增强底物抑制程度,而产物抑制不受影响。(e) 如果底物过量,氧浓度决定了该酶双加氧酶和氢过氧化物酶活性的比例。正如从模型中预测的那样,发现在低氧浓度下,双加氧反应的区域和立体特异性会降低。在自动激活阶段,稳态近似不成立。

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