Reuss M, Buchholz K
Biotechnol Bioeng. 1979 Nov;21(11):2061-81. doi: 10.1002/bit.260211112.
In a previous paper, the overall or macrokinetics of the immobilized glucose oxidase--catalase system has been presented. In this paper a detailed analysis of the interaction of diffusion and reaction in this system will be presented. The mathematical treatment includes two consecutive reactions with two-substrate kinetics. Furthermore, the deactivation of both enzymes due to the intermediate product peroxide is taken into account. The predicted results suggest that the efficiency of the glucose oxidase reaction depends on the concentration ranges of the two substrates. Furthermore, the external mass-transfer rate may cause a shift from glucose limitation to oxygen limitation. The efficiency of the coupled system is always higher than that predicted for the uncoupled reaction path. The calculations show that the economics of the coupled system depend a great deal on the deactivation of the enzymes.
在之前的一篇论文中,已经介绍了固定化葡萄糖氧化酶 - 过氧化氢酶系统的整体或宏观动力学。本文将对该系统中扩散与反应的相互作用进行详细分析。数学处理包括具有双底物动力学的两个连续反应。此外,还考虑了两种酶因中间产物过氧化物而失活的情况。预测结果表明,葡萄糖氧化酶反应的效率取决于两种底物的浓度范围。此外,外部传质速率可能导致从葡萄糖限制向氧气限制的转变。耦合系统的效率总是高于未耦合反应路径所预测的效率。计算表明,耦合系统的经济性在很大程度上取决于酶的失活情况。