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底物抑制与扩散限制相结合对电流型生物传感器响应的非单调效应

Non-Monotonic Effect of Substrate Inhibition in Conjunction with Diffusion Limitation on the Response of Amperometric Biosensors.

作者信息

Baronas Romas

机构信息

Faculty of Mathematics and Informatics, Institute of Computer Science, Vilnius University, Didlaukio 47, LT-08303 Vilnius, Lithuania.

出版信息

Biosensors (Basel). 2025 Jul 9;15(7):441. doi: 10.3390/bios15070441.

Abstract

The non-monotonic behavior of amperometric enzyme-based biosensors under uncompetitive and noncompetitive (mixed) substrate inhibition is investigated computationally using a two-compartment model consisting of an enzyme layer and an outer diffusion layer. The model is based on a system of reaction-diffusion equations that includes a nonlinear term associated with non-Michaelis-Menten kinetics of the enzymatic reaction and accounts for the partitioning between layers. In addition to the known effect of substrate inhibition, where the maximum biosensor current differs from the steady-state output, it has been determined that external diffusion limitations can also cause the appearance of a local minimum in the current. At substrate concentrations greater than both the Michaelis-Menten constant and the uncompetitive substrate inhibition constant, and in the presence of external diffusion limitation, the transient response of the biosensor, after immersion in the substrate solution, may follow a five-phase pattern depending on the model parameter values: it starts from zero, reaches a global or local maximum, decreases to a local minimum, increases again, and finally decreases to a steady intermediate value. The biosensor performance is analyzed numerically using the finite difference method.

摘要

利用由酶层和外扩散层组成的双室模型,对基于安培型酶的生物传感器在反竞争性和非竞争性(混合)底物抑制下的非单调行为进行了计算研究。该模型基于一个反应扩散方程组,该方程组包括一个与酶促反应的非米氏动力学相关的非线性项,并考虑了层间分配。除了已知的底物抑制效应(其中生物传感器的最大电流与稳态输出不同)外,还确定外部扩散限制也会导致电流出现局部最小值。在底物浓度大于米氏常数和反竞争性底物抑制常数两者的情况下,并且在存在外部扩散限制的情况下,生物传感器在浸入底物溶液后的瞬态响应可能根据模型参数值遵循五阶段模式:它从零开始,达到全局或局部最大值,降至局部最小值,再次增加,最后降至稳定的中间值。使用有限差分法对生物传感器性能进行了数值分析。

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