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首页> 外文期刊>International Journal of Control >Robustness of complex feedback systems: Application to oncological biochemical networks
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Robustness of complex feedback systems: Application to oncological biochemical networks

机译:复杂反馈系统的鲁棒性:在肿瘤生化网络中的应用

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摘要

Biochemical transduction networks can be modelled through a proper set of differential equations, and at the same time they can be experimentally analysed only by measuring a few signals at the end of the cascades. The study of those networks is of special importance in oncology.The approach proposed in this paper is aimed at characterising the network robustness with respect to both parameters and initial condition perturbations. The key idea is to introduce a robustness index, the proliferation index, and to study its behaviour over the parameter space. The index relates the measurable signals, and the shape of their time behaviour, to the model parameters and initial conditions. In addition, the paper will also provide specific results for a dynamic model of the EGFR-IGFR receptor pathway, which turns out to be relevant to the study of some specific pathologies, such as lung cancer. The connection between the proposed robustness index and the pathology will also be addressed.
机译:可以通过一组适当的微分方程对生化转导网络进行建模,同时只能通过在级联末端测量一些信号来对它们进行实验分析。这些网络的研究在肿瘤学中特别重要。本文提出的方法旨在表征网络在参数和初始条件扰动方面的鲁棒性。关键思想是引入鲁棒性指数,扩散指数,并研究其在参数空间上的行为。该索引将可测量的信号及其时间行为的形状与模型参数和初始条件相关联。此外,本文还将为EGFR-IGFR受体通路的动态模型提供特定结果,该模型与某些特定病理学(例如肺癌)的研究相关。提出的鲁棒性指数和病理之间的联系也将得到解决。

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