Comparative study of parameter sensitivity analyses of the TCR-activated Erk-MAPK signalling pathway.

Y Zhang, A Rundell
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引用次数: 127

Abstract

Parameter estimation is a major challenge for mathematical modelling of biological systems. Given the uncertainties associated with model parameters, it is important to understand how sensitive the model output is to variations in parameter values. A local sensitivity analysis determines the model sensitivity to parameter variations over a localised region around the nominal parameter values, whereas a global sensitivity analysis (GSA) investigates the sensitivity over the entire parameter space. Using a T-cell receptor-activated Erk-MAPK signalling pathway model as an example, the authors present a comparative study of a variety of different sensitivity analysis techniques. These techniques include: local sensitivity analysis, existing GSA methods of partial rank correlation coefficient, Sobol's, extended Fourier amplitude sensitivity test, as well as a weighted average of local sensitivities and a new GSA method to extract global parameter sensitivities from a parameter identification routine. Results of this study revealed critical reactions in the signalling pathway and their impact on the signalling dynamics and provided insights into embedded regulatory mechanisms such as feedback loops in the pathway. From this study, a recommendation emerges for a general sensitivity analysis strategy to efficiently and reliably infer quantitative, dynamic as well as topological properties from systems biology models.

tcr激活Erk-MAPK信号通路参数敏感性分析的比较研究。
参数估计是生物系统数学建模的一个主要挑战。考虑到与模型参数相关的不确定性,理解模型输出对参数值变化的敏感程度是很重要的。局部灵敏度分析确定了模型对标称参数值周围局部区域参数变化的灵敏度,而全局灵敏度分析(GSA)研究了整个参数空间的灵敏度。以t细胞受体激活的Erk-MAPK信号通路模型为例,作者对各种不同的敏感性分析技术进行了比较研究。这些技术包括:局部灵敏度分析,现有的偏秩相关系数的GSA方法,Sobol,扩展傅立叶振幅灵敏度检验,以及局部灵敏度的加权平均和从参数识别例程中提取全局参数灵敏度的新GSA方法。本研究的结果揭示了信号通路中的关键反应及其对信号动力学的影响,并提供了对信号通路中反馈回路等嵌入式调节机制的见解。从这项研究中,提出了一种通用的敏感性分析策略,以有效、可靠地从系统生物学模型中推断定量、动态和拓扑特性。
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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