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Design Principles as a Guide for Constraint Based and Dynamic Modeling: Towards an Integrative Workflow

机译:设计原则作为基于约束的模型和动态建模的指南:迈向集成工作流

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During the last 10 years, systems biology has matured from a fuzzy concept combining omics, mathematical modeling and computers into a scientific field on its own right. In spite of its incredible potential, the multilevel complexity of its objects of study makes it very difficult to establish a reliable connection between data and models. The great number of degrees of freedom often results in situations, where many different models can explain/fit all available datasets. This has resulted in a shift of paradigm from the initially dominant, maybe naive, idea of inferring the system out of a number of datasets to the application of different techniques that reduce the degrees of freedom before any data set is analyzed. There is a wide variety of techniques available, each of them can contribute a piece of the puzzle and include different kinds of experimental information. But the challenge that remains is their meaningful integration. Here we show some theoretical results that enable some of the main modeling approaches to be applied sequentially in a complementary manner, and how this workflow can benefit from evolutionary reasoning to keep the complexity of the problem in check. As a proof of concept, we show how the synergies between these modeling techniques can provide insight into some well studied problems: Ammonia assimilation in bacteria and an unbranched linear pathway with end-product inhibition.
机译:在过去的十年中,系统生物学已经从模糊的概念(将组学,数学建模和计算机相结合)发展到了自己的科学领域。尽管潜力巨大,但研究对象的多层次复杂性使得很难在数据和模型之间建立可靠的联系。大量的自由度通常会导致许多不同的模型可以解释/拟合所有可用数据集的情况。这导致范式从最初的占主导地位的(也许是幼稚的)想法转变为从多个数据集中推断出系统,而应用了在分析任何数据集之前降低自由度的不同技术。有各种各样的技术可用,每种技术都可以帮助解决难题,并包括不同种类的实验信息。但是仍然存在的挑战是他们有意义的整合。在这里,我们显示了一些理论结果,这些理论结果使一些主要的建模方法可以以互补的方式依次应用,并且该工作流如何从进化推理中受益,从而可以控制问题的复杂性。作为概念的证明,我们展示了这些建模技术之间的协同作用如何可以提供对一些已深入研究的问题的洞察力:细菌中的氨同化和具有终产物抑制作用的直链线性途径。

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