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Kinetics and reaction mechanism of yeast alcohol dehydrogenase with long-chain primary alcohols.

机译:酵母醇脱氢酶与长链伯醇的动力学和反应机理。

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摘要

Kinetic studies of yeast alcohol dehydrogenase with NAD+ and ethanol, hexanol or decanol as substrates invariably result in non-linear Lineweaver-Burk plots if the alcohol is the variable substrate. The kinetic coefficients determined from secondary plots are consistent with an 'equilibrium random-order' mechanism for extremely low alcohol concentrations and for all alcohols, the transformation of the ternary complexes being the rate-limiting step of the reaction. This mechanism also applies to long-chain substrates at high concentrations, whereas the rate of the ethanol-NAD+ reaction at high ethanol concentrations is determined by the dissociation of the enzyme-NADH complex. The dissociation constants for the enzyme-NAD+ complex and for the enzyme-alcohol complexes obtained from the kinetic quotients satisfactorily correspond to the dissociation constants obtained by use of other techniques. It is suggested that the non-linear curves may be attributed to a structural change in the enzyme itself, caused by the alcohol.
机译:如果酒精是可变底物,则以NAD +和乙醇,己醇或癸醇为底物的酵母酒精脱氢酶的动力学研究总是会产生非线性的Lineweaver-Burk图。从二级图中确定的动力学系数与极低醇浓度和所有醇的“平衡随机顺序”机制一致,三元络合物的转化是反应的限速步骤。该机理也适用于高浓度的长链底物,而高乙醇浓度下的乙醇-NAD +反应速率取决于酶-NADH复合物的解离。从动力学商获得的酶-NAD +络合物和酶-醇络合物的解离常数令人满意地对应于通过使用其他技术获得的解离常数。建议非线性曲线可以归因于由醇引起的酶本身的结构变化。

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