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Nonparametric Simulation of Signal Transduction Networks with Semi-Synchronized Update

机译:具有半同步更新的信号传感网络的非参数仿真

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摘要

Simulating signal transduction in cellular signaling networks provides predictions of network dynamics by quantifying the changes in concentration and activity-level of the individual proteins. Since numerical values of kinetic parameters might be difficult to obtain, it is imperative to develop non-parametric approaches that combine the connectivity of a network with the response of individual proteins to signals which travel through the network. The activity levels of signaling proteins computed through existing non-parametric modeling tools do not show significant correlations with the observed values in experimental results. In this work we developed a non-parametric computational framework to describe the profile of the evolving process and the time course of the proportion of active form of molecules in the signal transduction networks. The model is also capable of incorporating perturbations. The model was validated on four signaling networks showing that it can effectively uncover the activity levels and trends of response during signal transduction process.
机译:通过量化单个蛋白质的浓度和活性水平的变化,在细胞信号网络中模拟信号转导可提供网络动态的预测。由于可能难以获得动力学参数的数值,因此必须开发出将网络的连通性与单个蛋白质对通过网络传播的信号的响应相结合的非参数方法。通过现有的非参数建模工具计算出的信号蛋白的活性水平与实验结果中的观测值没有显着相关性。在这项工作中,我们开发了一个非参数计算框架来描述信号转导网络中进化过程的轮廓以及分子中活性形式所占比例的时间过程。该模型还能够包含扰动。该模型在四个信号网络上进行了验证,表明该模型可以有效揭示信号转导过程中的活性水平和响应趋势。

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