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BoolNet-an R package for generation, reconstruction and analysis of Boolean networks

机译:BoolNet-R软件包,用于生成,重建和分析布尔网络

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Motivation: As the study of information processing in living cells moves from individual pathways to complex regulatory networks, mathematical models and simulation become indispensable tools for analyzing the complex behavior of such networks and can provide deep insights into the functioning of cells. The dynamics of gene expression, for example, can be modeled with Boolean networks (BNs). These are mathematical models of low complexity, but have the advantage of being able to capture essential properties of gene-regulatory networks. However, current implementations of BNs only focus on different sub-aspects of this model and do not allow for a seamless integration into existing preprocessing pipelines.Results: BoolNet efficiently integrates methods for synchronous, asynchronous and probabilistic BNs. This includes reconstructing networks from time series, generating random networks, robustness analysis via perturbation, Markov chain simulations, and identification and visualization of attractors.
机译:动机:随着对活细胞信息处理的研究从单个途径转移到复杂的调控网络,数学模型和仿真成为分析此类网络的复杂行为必不可少的工具,并且可以为细胞的功能提供深刻的见解。例如,可以使用布尔网络(BN)对基因表达的动力学建模。这些是低复杂度的数学模型,但是具有能够捕获基因调节网络的基本特性的优点。但是,当前BN的实现仅关注此模型的不同子方面,并且不允许无缝集成到现有的预处理管道中。结果:BoolNet有效地集成了同步,异步和概率BN的方法。这包括从时间序列重建网络,生成随机网络,通过扰动进行鲁棒性分析,马尔可夫链模拟以及吸引子的识别和可视化。

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