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The effect of model rescaling and normalization on sensitivity analysis on an example of a MAPK pathway model

机译:模型重新缩放和规范化对MAPK通路模型示例敏感性分析的影响

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Background The description of intracellular processes based on chemical reaction kinetics has become a standard approach in the last decades, and parameter estimation poses several challenges. Sensitivity analysis is a powerful tool in model development that can aid model calibration in various ways. Results can for example be used to simplify the model by elimination or fixation of parameters that have a negligible influence on relevant model outputs. However, models are usually subject to rescaling and normalization to reference experiments, which changes the variance of the output. Thus, the results of the sensitivity analysis may change depending on the choice of these rescaling factors and reference experiments. Although it might intuitively be clear, this fact has not been addressed in the literature so far. Methods In this study we investigate the effect of model rescaling and additional normalization to a reference experiment on the outcome of two different sensitivity analyses. Results are exemplified on a model for the MAPK pathway module in PC-12 cell lines. For this purpose we apply local sensitivity analysis and a global variance-based method based on Sobol sensitivity coefficients, and compare the results for differently scaled and normalized model versions. Results Results indicate that both sensitivity analyses are invariant under simple rescaling of variables and parameters with constant factors, provided that sensitivity coefficients are normalized and that the parameter space is appropriately chosen for Sobol’s method. By contrast, normalization to a reference experiment that also depends on parameters has a large impact on the results of any sensitivity analysis, and in particular complicates the interpretation. Conclusion This work shows that, in order to perform sensitivity analysis, it is necessary to take into account the dependency on parameters of the reference condition when working with normalized model versions.
机译:背景技术在过去的几十年中,基于化学反应动力学的细胞内过程的描述已成为一种标准方法,参数估计带来了一些挑战。灵敏度分析是模型开发中的强大工具,可以通过各种方式帮助模型校准。例如,可以通过消除或固定对相关模型输出影响很小的参数,将结果用于简化模型。但是,模型通常需要重新缩放和归一化以进行参考实验,这会改变输出的方差。因此,灵敏度分析的结果可能会根据这些缩放因子的选择和参考实验而改变。尽管从直觉上可能很清楚,但到目前为止,这一事实尚未在文献中得到解决。方法在本研究中,我们调查了模型重缩放和对参考实验进行额外归一化对两种不同敏感性分析结果的影响。结果在PC-12细胞系中MAPK途径模块的模型中得到了例证。为此,我们应用局部灵敏度分析和基于Sobol灵敏度系数的基于全局方差的方法,并比较不同比例和标准化模型版本的结果。结果结果表明,只要对灵敏度系数进行了归一化并且为Sobol方法选择了适当的参数空间,那么在对具有恒定因子的变量和参数进行简单缩放后,两种灵敏度分析都是不变的。相比之下,对也依赖于参数的参考实验的归一化对任何敏感性分析的结果都有很大的影响,尤其会使解释变得复杂。结论这项工作表明,为了进行敏感性分析,在使用规范化模型版本时,有必要考虑参考条件对参数的依赖性。

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