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首页> 外文期刊>Journal of the Royal Society Interface >A methodology for global-sensitivityanalysis of time-dependent outputs insystems biology modelling
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A methodology for global-sensitivityanalysis of time-dependent outputs insystems biology modelling

机译:系统生物学建模中时间相关输出的全局敏感性分析的方法

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One of the main challenges in the development of mathematical and computational models of biological systems is the precise estimation of parameter values. Understanding the effects of uncertainties in parameter values on model behaviour is crucial to the successful use of these models. Global sensitivity analysis (SA) can be used to quantify the variability in model predictions resulting from the uncertainty in multiple parameters and to shed light on the biological mechanisms driving system behaviour. We present a new methodology for global SA in systems biology which is computationally efficient and can be used to identify the key parameters and their interactions which drive the dynamic behaviour of a complex biological model. The approach combines functional principal component analysis with established global SA techniques. The methodology is applied to a model of the insulin signalling pathway, defects of which are a major cause of type 2 diabetes and a number of key features of the system are identified.
机译:开发生物系统数学和计算模型的主要挑战之一是精确估计参数值。了解参数值不确定性对模型行为的影响对于成功使用这些模型至关重要。全局敏感性分析(SA)可用于量化模型预测中由多个参数的不确定性引起的可变性,并阐明驱动系统行为的生物学机制。我们为系统生物学中的全球SA提供了一种新方法,该方法计算效率高,可用于识别驱动复杂生物学模型动态行为的关键参数及其相互作用。该方法将功能主成分分析与已建立的全局SA技术相结合。将该方法应用于胰岛素信号通路的模型,该模型的缺陷是2型糖尿病的主要原因,并且确定了系统的许多关键特征。

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