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Bistability and Oscillations in the Huang-Ferrell Model of MAPK Signaling

机译:MAPK信号的Huang-Ferrell模型中的双稳态和振荡

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摘要

Physicochemical models of signaling pathways are characterized by high levels of structural and parametric uncertainty, reflecting both incomplete knowledge about signal transduction and the intrinsic variability of cellular processes. As a result, these models try to predict the dynamics of systems with tens or even hundreds of free parameters. At this level of uncertainty, model analysis should emphasize statistics of systems-level properties, rather than the detailed structure of solutions or boundaries separating different dynamic regimes. Based on the combination of random parameter search and continuation algorithms, we developed a methodology for the statistical analysis of mechanistic signaling models. In applying it to the well-studied MAPK cascade model, we discovered a large region of oscillations and explained their emergence from single-stage bistability. The surprising abundance of strongly nonlinear (oscillatory and bistable) input/output maps revealed by our analysis may be one of the reasons why the MAPK cascade in vivo is embedded in more complex regulatory structures. We argue that this type of analysis should accompany nonlinear multiparameter studies of stationary as well as transient features in network dynamics.
机译:信号通路的物理化学模型的特点是结构和参数的不确定性很高,既反映了有关信号传导的不完整知识,又反映了细胞过程的内在变异性。结果,这些模型试图预测具有数十甚至数百个自由参数的系统的动态。在这种不确定性级别上,模型分析应强调系统级属性的统计数据,而不是解决方案或分隔不同动态机制的边界的详细结构。基于随机参数搜索和连续算法的组合,我们开发了一种用于机械信号模型统计分析的方法。在将其应用到经过充分研究的MAPK级联模型中时,我们发现了一个很大的振荡区域,并解释了它们从单阶段双稳态中的出现。我们的分析揭示了令人惊讶的大量非线性(振荡和双稳态)输入/输出图,这可能是MAPK在体内级联嵌入更复杂的调节结构中的原因之一。我们认为,这种类型的分析应与网络动力学中的平稳和瞬态特征一起进行非线性多参数研究。

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