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Artefacts in statistical analyses of network motifs: general framework and application to metabolic networks

机译:网络主题统计分析中的伪像:通用框架及其在代谢网络中的应用

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摘要

Few-node subgraphs are the smallest collective units in a network that can be investigated. They are beyond the scale of individual nodes but more local than, for example, communities. When statistically over- or under-represented, they are called network motifs. Network motifs have been interpreted as building blocks that shape the dynamic behaviour of networks. It is this promise of potentially explaining emergent properties of complex systems with relatively simple structures that led to an interest in network motifs in an ever-growing number of studies and across disciplines. Here, we discuss artefacts in the analysis of network motifs arising from discrepancies between the network under investigation and the pool of random graphs serving as a null model. Our aim was to provide a clear and accessible catalogue of such incongruities and their effect on the motif signature. As a case study, we explore the metabolic network of Escherichia coli and show that only by excluding ever more artefacts from the motif signature a strong and plausible correlation with the essentiality profile of metabolic reactions emerges.
机译:很少有节点的子图是网络中可以调查的最小集合单元。它们超出了单个节点的范围,但比例如社区更本地化。当统计上代表过多或不足时,它们称为网络主题。网络主题已被解释为塑造网络动态行为的基础。正是这种有潜力用相对简单的结构来解释复杂系统的新兴特性的承诺,这引起了越来越多的研究和跨学科对网络主题的兴趣。在这里,我们讨论了在分析网络动机中的伪像,这些伪像是由调查中的网络与充当零模型的随机图池之间的差异引起的。我们的目的是提供一个清晰易懂的目录,其中包含此类不一致及其对图案签名的影响。作为案例研究,我们探索了大肠杆菌的代谢网络,结果表明,仅通过从基序签名中排除更多伪像,就会出现与代谢反应的基本特征相关的强烈且合理的相关性。

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