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酶促(R)-苯基乙酰甲醇分批生物转化过程的动力学分析与建模

Kinetic analysis and modelling of enzymatic (R)-phenylacetylcarbinol batch biotransformation process.

作者信息

Leksawasdi Noppol, Chow Yvonne Y S, Breuer Michael, Hauer Bernhard, Rosche Bettina, Rogers Peter L

机构信息

School of Biotechnology and Biomolecular Sciences, University of New South Wales, Sydney, NSW 2052, Australia.

出版信息

J Biotechnol. 2004 Jul 15;111(2):179-89. doi: 10.1016/j.jbiotec.2004.04.001.

Abstract

Initial rate and biotransformation studies were applied to refine and validate a mathematical model for enzymatic (R)-phenylacetylcarbinol (PAC) production from pyruvate and benzaldehyde using Candida utilis pyruvate decarboxylase (PDC). The rate of PAC formation was directly proportional to the enzyme activity level up to 5.0 U ml-1 carboligase. Michaelis-Menten kinetics were determined for the effect of pyruvate concentration on the reaction rate. The effect of benzaldehyde followed the sigmoidal shape of the Monod-Wyman-Changeux (MWC) model. The biotransformation model, which also included a term for PDC inactivation by benzaldehyde, was used to determine the overall rate constants for the formation of PAC, acetaldehyde, and acetoin. These values were determined from data for three batch biotransformations performed over a range of initial concentrations (viz. 50-150 mM benzaldehyde, 60-180 mM pyruvate, 1.1-3.4 U ml-1 enzyme activity). The finalized model was then used to predict a batch biotransformation profile at 120/100 mM initial pyruvate/benzaldehyde (initial enzyme activity 3.0 U ml-1). The simulated kinetics gave acceptable fitting (R2 = 0.9963) to the time courses of these latter experimental data for substrates pyruvate and benzaldehyde, product PAC, by-products acetaldehyde and acetoin, as well as enzyme activity level.

摘要

开展了初始速率和生物转化研究,以优化和验证一个数学模型,该模型用于利用产朊假丝酵母丙酮酸脱羧酶(PDC)从丙酮酸和苯甲醛酶促生产(R)-苯基乙酰甲醇(PAC)。在高达5.0 U ml-1的羧化酶活性水平下,PAC形成速率与酶活性水平成正比。测定了丙酮酸浓度对反应速率影响的米氏动力学。苯甲醛的影响符合莫诺德-怀曼-尚热(MWC)模型的S形曲线。生物转化模型(其中还包括苯甲醛使PDC失活的一项)用于确定PAC、乙醛和乙偶姻形成的总速率常数。这些值是根据在一系列初始浓度(即50 - 150 mM苯甲醛、60 - 180 mM丙酮酸、1.1 - 3.4 U ml-¬1酶活性)下进行的三次分批生物转化数据确定的。然后使用最终确定的模型预测在120/100 mM初始丙酮酸/苯甲醛(初始酶活性3.0 U ml-1)时的分批生物转化曲线。模拟动力学对这些后来关于底物丙酮酸和苯甲醛、产物PAC、副产物乙醛和乙偶姻以及酶活性水平的实验数据的时间进程给出了可接受的拟合度(R2 = 0.9963)。

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