Theoretical and Numerical Analysis of Nonlinear Processes in Amperometric Enzyme Electrodes with Cyclic Substrate Conversion

Vinolyn Sylvia, Rajendran Joy Salomi, L. Rajendran, M. Lyons
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引用次数: 4

Abstract

A theoretical model of amperometric enzyme electrodes has been developed in which chemical amplification occurs in a single enzyme membrane via cyclic substrate conversion. The system is based on non-stationary diffusion equations with a nonlinear factor related to the Michaelis–Menten kinetics of the enzymatic reaction. By solving the nonlinear equations using the AGM technique, simple analytical expressions of concentration substrate, product, and amperometric current response are derived. Further, biosensor sensitivity, resistance, and gain are obtained from the current. MATLAB programming was used to carry out the digital simulation. The analytical results are validated with the numerical results. The effect of substrate concentration, maximum enzymatic rate, and membrane thickness on biosensor response was evaluated.
循环底物转化安培酶电极非线性过程的理论与数值分析
一个安培酶电极的理论模型已经发展,其中化学扩增发生在一个单一的酶膜通过循环底物转化。该系统基于非平稳扩散方程,该方程具有与酶促反应的Michaelis-Menten动力学相关的非线性因子。利用AGM技术求解非线性方程,导出了浓度、衬底、产物和电流响应的简单解析表达式。此外,生物传感器的灵敏度、电阻和增益是由电流获得的。采用MATLAB编程进行数字仿真。分析结果与数值结果相吻合。研究了底物浓度、最大酶解速率和膜厚度对生物传感器响应的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
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