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Model-based inference of biochemical parameters and dynamic properties of microbial signal transduction networks

机译:基于模型的微生物信号转导网络生化参数和动力学性质的推断

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摘要

Because of the inherent uncertainty about quantitative aspects of signalling networks it is of substantial interest to use computational methods that allow inferring non-measurable quantities such as rate constants, from measurable quantities such as changes in protein abundances. We argue that true biochemical parameters like rate constants can generally not be inferred using models due to their non-identifiability. Recent advances, however, facilitate the analysis of parameter identifiability of a given model and automated discrimination of candidate models, both being important techniques to still extract quantitative biological information from experimental data.
机译:由于信号网络的定量方面存在固有的不确定性,因此使用计算方法来从诸如蛋白质丰度变化的可测量量中推断出不可测量的量(如速率常数),就引起了人们的极大兴趣。我们认为,由于模型的不可识别性,通常无法使用模型推断出诸如速率常数之类的真实生化参数。然而,最近的进展促进了给定模型的参数可识别性的分析和候选模型的自动判别,这都是从实验数据中仍提取定量生物学信息的重要技术。

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