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首页> 外文期刊>PLoS Computational Biology >The Logic of EGFR/ErbB Signaling: Theoretical Properties and Analysis of High-Throughput Data
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The Logic of EGFR/ErbB Signaling: Theoretical Properties and Analysis of High-Throughput Data

机译:EGFR / ErbB信号传导的逻辑:理论性质和高通量数据分析

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The epidermal growth factor receptor (EGFR) signaling pathway is probably the best-studied receptor system in mammalian cells, and it also has become a popular example for employing mathematical modeling to cellular signaling networks. Dynamic models have the highest explanatory and predictive potential; however, the lack of kinetic information restricts current models of EGFR signaling to smaller sub-networks. This work aims to provide a large-scale qualitative model that comprises the main and also the side routes of EGFR/ErbB signaling and that still enables one to derive important functional properties and predictions. Using a recently introduced logical modeling framework, we first examined general topological properties and the qualitative stimulus-response behavior of the network. With species equivalence classes, we introduce a new technique for logical networks that reveals sets of nodes strongly coupled in their behavior. We also analyzed a model variant which explicitly accounts for uncertainties regarding the logical combination of signals in the model. The predictive power of this model is still high, indicating highly redundant sub-structures in the network. Finally, one key advance of this work is the introduction of new techniques for assessing high-throughput data with logical models (and their underlying interaction graph). By employing these techniques for phospho-proteomic data from primary hepatocytes and the HepG2 cell line, we demonstrate that our approach enables one to uncover inconsistencies between experimental results and our current qualitative knowledge and to generate new hypotheses and conclusions. Our results strongly suggest that the Rac/Cdc42 induced p38 and JNK cascades are independent of PI3K in both primary hepatocytes and HepG2. Furthermore, we detected that the activation of JNK in response to neuregulin follows a PI3K-dependent signaling pathway.
机译:表皮生长因子受体(EGFR)信号传导途径可能是哺乳动物细胞中研究最多的受体系统,它也已成为将数学模型应用于细胞信号传导网络的流行示例。动态模型具有最高的解释和预测潜力;然而,缺乏动力学信息将当前的EGFR信号传导模型限制在较小的子网中。这项工作旨在提供一种大规模的定性模型,该模型既包括EGFR / ErbB信号传导的主要途径,也包括旁路途径,并且仍然使人们能够得出重要的功能特性和预测。使用最近引入的逻辑建模框架,我们首先检查了网络的一般拓扑属性和定性刺激响应行为。对于物种等价类,我们为逻辑网络引入了一种新技术,该技术揭示了行为紧密耦合的节点集。我们还分析了一个模型变体,该变体明确说明了有关模型中信号逻辑组合的不确定性。该模型的预测能力仍然很高,表明网络中具有高度冗余的子结构。最后,这项工作的一个关键进展是引入了使用逻辑模型(及其底层交互图)评估高通量数据的新技术。通过将这些技术用于原代肝细胞和HepG2细胞系的磷酸化蛋白质组学数据,我们证明了我们的方法使人们能够发现实验结果与当前的定性知识之间的矛盾,并产生新的假设和结论。我们的结果强烈表明,Rac / Cdc42诱导的p38和JNK级联在原代肝细胞和HepG2中均独立于PI3K。此外,我们检测到响应神经调节蛋白的JNK激活遵循PI3K依赖性信号通路。

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