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小鼠乙醇脱氢酶4:动力学机制、底物特异性及乙醇对视黄酸代谢影响的模拟

Mouse alcohol dehydrogenase 4: kinetic mechanism, substrate specificity and simulation of effects of ethanol on retinoid metabolism.

作者信息

Plapp B V, Mitchell J L, Berst K B

机构信息

Department of Biochemistry, The University of Iowa, 52242-1109, Iowa City, IA, USA.

出版信息

Chem Biol Interact. 2001 Jan 30;130-132(1-3):445-56. doi: 10.1016/s0009-2797(00)00284-2.

Abstract

Mouse ADH4 (purified, recombinant) has a low catalytic efficiency for ethanol and acetaldehyde, but very high activity with longer chain alcohols and aldehydes, at pH 7.3 and temperature 37 degrees C. The observed turnover numbers and catalytic efficiencies for the oxidation of all-trans-retinol and the reduction of all-trans-retinal and 9-cis-retinal are low relative to other substrates; 9-cis-retinal is more reactive than all-trans-retinal. The reduction of all-trans- or 9-cis-retinals coupled to the oxidation of ethanol by NAD(+) is as efficient as the reduction with NADH. However, the Michaelis constant for ethanol is about 100 mM, which indicates that the activity would be lower at physiologically relevant concentrations of ethanol. Simulations of the oxidation of retinol to retinoic acid with mouse ADH4 and human aldehyde dehydrogenase (ALDH1), using rate constants estimated for all steps in the mechanism, suggest that ethanol (50 mM) would modestly decrease production of retinoic acid. However, if the K(m) for ethanol were smaller, as for human ADH4, the rate of retinol oxidation and formation of retinoic acid would be significantly decreased during metabolism of 50 mM ethanol. These studies begin to describe quantitatively the roles of enzymes involved in the metabolism of alcohols and carbonyl compounds.

摘要

在pH 7.3和37摄氏度条件下,小鼠ADH4(纯化的重组体)对乙醇和乙醛的催化效率较低,但对长链醇和醛具有非常高的活性。相对于其他底物,观察到的全反式视黄醇氧化以及全反式视黄醛和9-顺式视黄醛还原的周转数和催化效率较低;9-顺式视黄醛比全反式视黄醛更具反应性。通过NAD(+)将全反式或9-顺式视黄醛的还原与乙醇的氧化偶联,其效率与用NADH还原的效率相同。然而,乙醇的米氏常数约为100 mM,这表明在生理相关浓度的乙醇下,其活性会更低。利用该机制中所有步骤估计的速率常数,用小鼠ADH4和人醛脱氢酶(ALDH1)对视黄醇氧化为视黄酸的模拟表明,乙醇(50 mM)会适度降低视黄酸的产生。然而,如果乙醇的K(m)较小,如人ADH4的情况,在50 mM乙醇代谢过程中,视黄醇氧化速率和视黄酸形成速率会显著降低。这些研究开始定量描述参与醇类和羰基化合物代谢的酶的作用。

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