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Boolean network models of cellular regulation: prospects and limitations

机译:细胞调节的布尔网络模型:前景和局限性

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摘要

Computer models are valuable tools towards an understanding of the cell's biochemical regulatory machinery. Possible levels of description of such models range from modelling the underlying biochemical details to top-down approaches, using tools from the theory of complex networks. The latter, coarse-grained approach is taken where regulatory circuits are classified in graph-theoretical terms, with the elements of the regulatory networks being reduced to simply nodes and links, in order to obtain architectural information about the network. Further, considering dynamics on networks at such an abstract level seems rather unlikely to match dynamical regulatory activity of biological cells. Therefore, it came as a surprise when recently examples of discrete dynamical network models based on very simplistic dynamical elements emerged which in fact do match sequences of regulatory patterns of their biological counterparts. Here I will review such discrete dynamical network models, or Boolean networks, of biological regulatory networks. Further, we will take a look at such models extended with stochastic noise, which allow studying the role of network topology in providing robustness against noise. In the end, we will discuss the interesting question of why at all such simple models can describe aspects of biology despite their simplicity. Finally, prospects of Boolean models in exploratory dynamical models for biological circuits and their mutants will be discussed.
机译:计算机模型是了解细胞生化调节机制的宝贵工具。使用复杂网络理论中的工具,此类模型的可能描述级别包括从基础生化细节建模到自上而下的方法。采用后者的粗粒度方法,其中将调节电路按图论术语分类,将调节网络的元素简化为简单的节点和链接,以便获得有关网络的体系结构信息。此外,在如此抽象的水平上考虑网络动力学似乎不太可能与生物细胞的动态调节活性相匹配。因此,令人惊讶的是,最近出现了基于非常简单的动态元素的离散动态网络模型的示例,这些示例实际上与它们的生物学对应物的调控模式序列相匹配。在这里,我将回顾生物监管网络的这种离散动态网络模型或布尔网络。此外,我们将研究这种扩展了随机噪声的模型,这些模型可以研究网络拓扑在提供抗噪声鲁棒性方面的作用。最后,我们将讨论一个有趣的问题,即为什么尽管如此简单的模型仍然可以描述生物学的各个方面。最后,将讨论生物回路及其突变体的探索性动力学模型中布尔模型的前景。

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