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反胶束中酶动力学的描述。1. 理论。

Description of enzyme kinetics in reversed micelles. 1. Theory.

作者信息

Verhaert R M, Hilhorst R, Vermuë M, Schaafsma T J, Veeger C

机构信息

Department of Biochemistry, Agricultural University, Wageningen, The Netherlands.

出版信息

Eur J Biochem. 1990 Jan 12;187(1):59-72. doi: 10.1111/j.1432-1033.1990.tb15277.x.

Abstract

In the literature measurements of kinetic data of enzymes in reversed micelles have been interpreted in two ways. In the first, all enzyme parameters are expressed with respect to the total volume of the reversed micellar solution. In the second, the enzymatic conversion is related only to the fraction of the volume consisting of aqueous solution (pseudophase model). In this paper equations are derived describing the rate of an enzymatic reaction for three different kinds of enzymes: enzymes obeying Michaelis-Menten kinetics, enzymes following a ping-pong bi-bi mechanism and enzymes which convert substrates according to an ordered mechanism. In deriving these equations, a distinction is made between intermicellar exchange reactions of substrate(s) and product(s) and the enzymatic reaction which takes place in the waterpool of a reversed micelle. In the description, all intrinsic rate constants of the enzyme are assumed to be independent of its environment. The rate equations show that the presence and efficiency of the intermicellar exchange reaction, which supplies the enzyme with substrate and removes product, can affect the rate of an enzymatic reaction under common experimental conditions. Whereas kinetic parameters derived from double-reciprocal plots often seem to be affected by enclosure in reversed micelles, these apparent deviations from kinetics in aqueous media can be explained by the model presented here as arising from exchange phenomena. Neither the experimentally determined maximum enzyme velocity, vmax, nor the Michaelis constants are affected by the incorporation of the enzyme in reversed micelles. The deviations of kinetic parameters from the aqueous values are shown to depend strongly on the concentration of reversed micelles, the intermicellar exchange rate and the volume fraction of water, a dependence in agreement with findings reported in the literature.

摘要

在文献中,对反胶束中酶动力学数据的测量有两种解释方式。第一种是,所有酶参数均相对于反胶束溶液的总体积来表示。第二种是,酶促转化仅与由水溶液组成的体积分数相关(假相模型)。本文推导了描述三种不同类型酶的酶促反应速率的方程:遵循米氏动力学的酶、遵循乒乓双底物双产物机制的酶以及按有序机制转化底物的酶。在推导这些方程时,区分了底物和产物的胶束间交换反应以及在反胶束水池中发生的酶促反应。在描述过程中,假定酶的所有固有速率常数均与其环境无关。速率方程表明,为酶提供底物并去除产物的胶束间交换反应的存在和效率,在常见实验条件下会影响酶促反应的速率。虽然从双倒数图得出的动力学参数似乎常常受到包封于反胶束中的影响,但此处提出的模型可以解释这些与水相介质中动力学的明显偏差是由交换现象引起的。反胶束中酶的掺入既不会影响实验测定的最大酶促速度(v_{max}),也不会影响米氏常数。动力学参数与水相值的偏差强烈依赖于反胶束的浓度、胶束间交换速率和水的体积分数,这种依赖性与文献报道的结果一致。

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