乳酸盐生物传感器的运行稳定性研究:建模、参数识别和稳定性分析

V. Martsenyuk, Oleksandr Soldatkin, A. Kłos-Witkowska, Andriy Sverstiuk, Ksenya Berketa
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摘要

乳酸盐生物传感器是各种生物医学和生物技术应用中的关键设备,本文研究了乳酸盐生物传感器的工作稳定性。我们详细介绍了为乳酸盐测量量身定制的安培传感器的构造,并概述了用于经验验证的实验装置。建模框架结合了布朗和迈克尔-门顿动力学,整合了分布式和离散延迟,以捕捉乳酸盐传感的复杂动态。为了确定模型参数,我们提出了一种非线性优化方法,利用布朗模型延迟值的初始近似值来建立具有离散延迟的后续模型。稳定性分析是我们研究的基石,其核心是围绕平衡状态的线性化以及对准多项式实部的仔细研究。值得注意的是,我们的研究结果表明,离散延迟模型表现出边际稳定性,在渐近稳定性和不稳定性之间取得了微妙的平衡。我们引入了基于特征准多项式根的边际稳定性验证标准,为系统行为提供了实用的见解。我们观察到,随着延迟值的增加,稳定焦点会过渡到极限循环和周期加倍现象,这一点可以从相位图和采用波恩卡列截面的分岔图中得到证明。此外,我们还发现了模型适用性的局限性,特别是随着延迟的增加,解的正向性也会丧失,这就强调了在使用延迟指数函数公式时谨慎解释的必要性。这项全面的研究为乳酸盐生物传感器的设计和运行特性提供了宝贵的见解,为了解和优化其在不同环境中的性能提供了一个强大的框架。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Operational stability study of lactate biosensors: modeling, parameter identification, and stability analysis
This paper investigates the operational stability of lactate biosensors, crucial devices in various biomedical and biotechnological applications. We detail the construction of an amperometric transducer tailored for lactate measurement and outline the experimental setup used for empirical validation.The modeling framework incorporates Brown and Michaelis–Menten kinetics, integrating both distributed and discrete delays to capture the intricate dynamics of lactate sensing. To ascertain model parameters, we propose a nonlinear optimization method, leveraging initial approximations from the Brown model’s delay values for the subsequent model with discrete delays.Stability analysis forms a cornerstone of our investigation, centering on linearization around equilibrium states and scrutinizing the real parts of quasi-polynomials. Notably, our findings reveal that the discrete delay model manifests marginal stability, occupying a delicate balance between asymptotic stability and instability. We introduce criteria for verifying marginal stability based on characteristic quasi-polynomial roots, offering practical insights into system behavior.Qalitative examination of the model elucidates the influence of delay on dynamic behavior. We observe a transition from stable focus to limit cycle and period-doubling phenomena with increasing delay values, as evidenced by phase plots and bifurcation diagrams employing Poincaré sections. Additionally, we identify limitations in model applicability, notably the loss of solution positivity with growing delays, underscoring the necessity for cautious interpretation when employing delayed exponential function formulations. This comprehensive study provides valuable insights into the design and operational characteristics of lactate biosensors, offering a robust framework for understanding and optimizing their performance in diverse settings.
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