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水/有机双相体系中肽的酶促合成动力学。嗜热菌蛋白酶催化合成N-(苄氧羰基)-L-苯丙氨酰-L-苯丙氨酸甲酯。

Kinetics of enzymatic synthesis of peptides in aqueous/organic biphasic systems. Thermolysin-catalyzed synthesis of N-(benzyloxycarbonyl)-L-phenylalanyl-L-phenylalanine methyl ester.

作者信息

Nakanishi K, Matsuno R

出版信息

Eur J Biochem. 1986 Dec 15;161(3):533-40. doi: 10.1111/j.1432-1033.1986.tb10475.x.

Abstract

We studied kinetics of thermolysin-catalyzed peptide synthesis in an aqueous/organic biphasic system theoretically and experimentally. As a model reaction producing a condensation product having no dissociating groups, we used the synthesis of N-(benzyloxycarbonyl)-L-phenylalanyl-L-phenylalanine methyl ester (Z-Phe2OMe) from N-(benzyloxycarbonyl)-L-phenylalanine (Z-Phe) and L-phenylalanine methyl ester (PheOMe). Usually, ethyl acetate was used as the organic solvent. First we studied the kinetics of the synthesis of Z-Phe2OMe in a buffer solution saturated with ethyl acetate. Then, factors that may affect the kinetics in the biphasic system were examined. The course of Z-Phe2OMe synthesis in the biphasic system was explained by the rate equations obtained, using the partitions of substrate and product and non-enzymatic decomposition of PheOMe. In the biphasic reaction system, the rate of synthesis was lower for a wide range of pH due to the unfavorable partition of PheOMe in the aqueous phase, but yields were higher than in the buffer solution. The effects of the organic solvents on the rate of synthesis could also be explained by variations in the partition coefficient of PheOMe. Finally, we gave a way to predict the aqueous-phase pH change caused by partitioning of the substrate. The significance of the pH change was shown in connection with the reaction using the immobilized enzyme in an organic solvent.

摘要

我们从理论和实验两方面研究了嗜热菌蛋白酶催化的肽合成在水/有机双相体系中的动力学。作为一个生成无解离基团缩合产物的模型反应,我们采用了由N -(苄氧羰基)-L -苯丙氨酸(Z - Phe)和L -苯丙氨酸甲酯(PheOMe)合成N -(苄氧羰基)-L -苯丙氨酰-L -苯丙氨酸甲酯(Z - Phe2OMe)的反应。通常,乙酸乙酯用作有机溶剂。首先,我们研究了在乙酸乙酯饱和的缓冲溶液中Z - Phe2OMe的合成动力学。然后,考察了可能影响双相体系中动力学的因素。利用底物和产物的分配以及PheOMe的非酶分解所得到的速率方程,解释了双相体系中Z - Phe2OMe的合成过程。在双相反应体系中,由于PheOMe在水相中的分配不利,在很宽的pH范围内合成速率较低,但产率高于缓冲溶液。有机溶剂对合成速率的影响也可以通过PheOMe分配系数的变化来解释。最后,我们给出了一种预测底物分配引起水相pH变化的方法。结合在有机溶剂中使用固定化酶的反应,展示了pH变化的重要性。

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