Yokota K, Yamazaki I
Biochemistry. 1977 May 3;16(9):1913-20. doi: 10.1021/bi00628a024.
Under suitable experimental conditions the aerobic oxidation of NADH catalyzed by horseradish peroxidase occurred in four characteristic phases: initial burst, induction phase, steady state, and termination. A trace amount of H2O2 present in the NADH solution brought about initial burst in the formation of oxyperoxidase. About 2 mol of oxyperoxidase was formed per mol of H2O2. When a considerable amount of the ferric enzyme still remained, the initial burst was followed by an induction phase. In this phase the rate of oxyperoxidase formation from the ferric enzyme increased with the decrease of the ferric enzyme and an approximately exponential increase of oxyperoxidase was observed. A rapid oxidation of NADH suddenly began at the end of the induction phase and the oxidation continued at a relatively constant rate. In the steady state, oxygen was consumed and H2O2 accumulated. A drastic terminating reaction suddenly set in when the oxygen concentration decreased under a certain level. During the reaction, H2O2 disappeared accompanying an accelerated oxidation of NADH and the enzyme returned to the ferric form after a transient increase of peroxidase compound II. Time courses of NADH oxidation, O2 consumption, H2O2 accumulation, and formation of enzyme intermediates could be simulated with an electronic computer using 11 elementary reactions and 9 rate equations. The results were also discussed in relation to the mechanism for oscillatory responses of the reaction that appeared in an open system with a continuous supply of oxygen.
在合适的实验条件下,辣根过氧化物酶催化的NADH需氧氧化反应呈现四个特征阶段:初始爆发阶段、诱导阶段、稳态阶段和终止阶段。NADH溶液中存在的微量H2O2引发了氧过氧化物酶形成的初始爆发阶段。每摩尔H2O2大约生成2摩尔氧过氧化物酶。当仍有相当数量的铁酶存在时,初始爆发阶段之后是诱导阶段。在这个阶段,铁酶形成氧过氧化物酶的速率随着铁酶数量的减少而增加,并且观察到氧过氧化物酶近似指数增长。在诱导阶段结束时,NADH突然开始快速氧化,并且以相对恒定的速率持续氧化。在稳态阶段,消耗氧气并积累H2O2。当氧气浓度降至一定水平以下时,突然发生剧烈的终止反应。在反应过程中,H2O2消失,同时NADH加速氧化,并且在过氧化物酶化合物II短暂增加之后,酶恢复到铁的形式。使用11个基本反应和9个速率方程,通过电子计算机可以模拟NADH氧化、O2消耗、H2O2积累以及酶中间体形成的时间进程。还结合在有连续氧气供应的开放系统中出现的反应振荡响应机制对结果进行了讨论。