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Stochastic and deterministic multiscale models for systems biology: an auxin-transport case study

机译:系统生物学的随机和确定性多尺度模型:生长素运输案例研究

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Background Stochastic and asymptotic methods are powerful tools in developing multiscale systems biology models; however, little has been done in this context to compare the efficacy of these methods. The majority of current systems biology modelling research, including that of auxin transport, uses numerical simulations to study the behaviour of large systems of deterministic ordinary differential equations, with little consideration of alternative modelling frameworks. Results In this case study, we solve an auxin-transport model using analytical methods, deterministic numerical simulations and stochastic numerical simulations. Although the three approaches in general predict the same behaviour, the approaches provide different information that we use to gain distinct insights into the modelled biological system. We show in particular that the analytical approach readily provides straightforward mathematical expressions for the concentrations and transport speeds, while the stochastic simulations naturally provide information on the variability of the system. Conclusions Our study provides a constructive comparison which highlights the advantages and disadvantages of each of the considered modelling approaches. This will prove helpful to researchers when weighing up which modelling approach to select. In addition, the paper goes some way to bridging the gap between these approaches, which in the future we hope will lead to integrative hybrid models.
机译:背景技术随机和渐近方法是开发多尺度系统生物学模型的有力工具。但是,在这种情况下,几乎没有什么可以比较这些方法的功效。当前大多数系统生物学建模研究(包括生长素运输)都使用数值模拟来研究大型确定性常微分方程系统的行为,而很少考虑替代建模框架。结果在本案例研究中,我们使用解析方法,确定性数值模拟和随机数值模拟来求解生长素运输模型。尽管这三种方法通常可以预测相同的行为,但是这些方法提供了不同的信息,我们可以使用这些信息来获得对建模生物系统的独特见解。我们特别表明,分析方法很容易为浓度和传输速度提供简单的数学表达式,而随机模拟自然会提供有关系统可变性的信息。结论我们的研究提供了建设性的比较,突出了每种考虑的建模方法的优缺点。在权衡选择哪种建模方法时,这将对研究人员有所帮助。此外,本文还通过某种方式弥合了这两种方法之间的差距,希望在将来能导致集成混合模型的发展。

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