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Reverse engineering of logic-based differential equation models using a mixed-integer dynamic optimization approach

机译:基于混合整数动态优化方法的基于逻辑的微分方程模型的逆向工程

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摘要

>Motivation: Systems biology models can be used to test new hypotheses formulated on the basis of previous knowledge or new experimental data, contradictory with a previously existing model. New hypotheses often come in the shape of a set of possible regulatory mechanisms. This search is usually not limited to finding a single regulation link, but rather a combination of links subject to great uncertainty or no information about the kinetic parameters.>Results: In this work, we combine a logic-based formalism, to describe all the possible regulatory structures for a given dynamic model of a pathway, with mixed-integer dynamic optimization (MIDO). This framework aims to simultaneously identify the regulatory structure (represented by binary parameters) and the real-valued parameters that are consistent with the available experimental data, resulting in a logic-based differential equation model. The alternative to this would be to perform real-valued parameter estimation for each possible model structure, which is not tractable for models of the size presented in this work. The performance of the method presented here is illustrated with several case studies: a synthetic pathway problem of signaling regulation, a two-component signal transduction pathway in bacterial homeostasis, and a signaling network in liver cancer cells.>Supplementary information: are available at Bioinformatics online.>Contact: or
机译:>动机:系统生物学模型可用于测试基于先前知识或新实验数据而制定的新假设,该假设与先前存在的模型相矛盾。新的假设通常以一组可能的调节机制的形式出现。此搜索通常不仅限于查找单个调节链接,而是组合链接,这些链接存在很大的不确定性或没有动力学参数的信息。>结果:在这项工作中,我们结合了基于逻辑的形式主义,用混合整数动态优化(MIDO)描述给定路径动态模型的所有可能监管结构。该框架旨在同时识别监管结构(由二进制参数表示)和与可用实验数据一致的实值参数,从而形成基于逻辑的微分方程模型。替代方法是对每个可能的模型结构执行实值参数估计,这对于本文介绍的尺寸模型来说很难处理。此处通过几个案例研究说明了该方法的性能:信号调节的综合途径问题,细菌稳态中的两组分信号转导途径以及肝癌细胞中的信号网络。>补充信息:可在线访问生物信息学。>联系方式:

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