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首页> 外文期刊>Biotechnology and Bioengineering >Kinetic Modeling of a Bi-Enzymatic System for Efficient Conversion of Lactose to Lactobionic Acid
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Kinetic Modeling of a Bi-Enzymatic System for Efficient Conversion of Lactose to Lactobionic Acid

机译:乳糖有效转化为乳糖酸的双酶体系的动力学模型

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摘要

A model has been developed to describe the interaction between two enzymes and an intermediary redox mediator. In this bi-enzymatic process, the enzyme cellobiose dehydrogenase oxidizes lactose at the C-1 position of the reducing sugar moiety to lactobionolactone, which spontaneously hydrolyzes to lactobionic acid. 2,2'Azino-bis(3-ethylbenzothiazoline-6-sulfonic acid) diammonium salt is used as electron acceptor and is continuously regenerated by laccase. Oxygen is the terminal electron acceptor and is fully reduced to water by laccase, a copper-containing oxidase. Oxygen is added to the system by means of bubble-free oxygenation. Using the model, the productivity of the process is investigated by simultaneous solution of the rate equations for varying enzyme quantities and redox mediator concentrations, solved with the aid of a numerical solution. The isocharts developed in this work provide an easy-to-use graphical tool to determine optimal process conditions. The model allows the optimization of the employed activities of the two enzymes and the redox mediator concentration for a given overall oxygen mass transfer coefficient by using the isocharts. Model predictions are well in agreement with the experimental data.
机译:已经开发出一种模型来描述两种酶与中间氧化还原介体之间的相互作用。在该双酶过程中,纤维二糖脱氢酶将还原糖部分的C-1位置的乳糖氧化为乳糖酸内酯,后者自然水解为乳糖酸。 2,2'叠氮基双(3-乙基苯并噻唑啉-6-磺酸)二铵盐用作电子受体,并通过漆酶连续再生。氧是末端电子受体,被漆酶(一种含铜的氧化酶)完全还原为水。氧气通过无气泡氧合添加到系统中。使用该模型,通过同时求解各种酶量和氧化还原介体浓度的速率方程,并借助数值解,可以研究过程的生产率。在这项工作中开发的等时线提供了易于使用的图形工具来确定最佳工艺条件。该模型允许通过使用等时线,针对给定的总氧气传质系数优化两种酶的活性和氧化还原介体浓度。模型预测与实验数据完全吻合。

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