Andrieux Claude P, Limoges Benoît, Marchal Damien, Savéant Jean-Michel
Laboratoire d'Electrochimie Moléculaire, Université de Paris 7-Denis Diderot, 2 place Jussieu, 75251 Paris Cedex 05, France.
Anal Chem. 2006 May 1;78(9):3138-43. doi: 10.1021/ac052176v.
In view of the existing and potential applications of electrochemical enzymatic catalysis with redox enzymes immobilized on the electrode surface in biosensors, a numerical calculation procedure for simulating their cyclic voltammetric responses is presented. It is applicable to systems involving a redox cosubstrate in solution. The cosubstrates, substrates, products, and inhibitors are assumed to diffuse linearly (planar electrode) between the electrode and the solution. The reactions in which the various forms of the immobilized enzyme participate may be as numerous and intricate as required by the simulation with no other restriction than the computing time. They may, at will, follow or not follow Michaelis-Menten kinetics. Slow charge-transfer cosubstrates are treated in the framework of Butler-Volmer kinetic law.
鉴于固定在电极表面的氧化还原酶在生物传感器中进行电化学酶催化的现有及潜在应用,本文提出了一种用于模拟其循环伏安响应的数值计算程序。该程序适用于涉及溶液中氧化还原共底物的系统。假设共底物、底物、产物和抑制剂在电极与溶液之间呈线性扩散(平面电极)。固定化酶的各种形式所参与的反应可以根据模拟需要设定得尽可能多且复杂,除计算时间外无其他限制。它们可以随意遵循或不遵循米氏动力学。慢电荷转移共底物在巴特勒 - 沃尔默动力学定律的框架内进行处理。