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The Evolutionary Dynamics of Protein-Protein Interaction Networks Inferred from the Reconstruction of Ancient Networks

机译:蛋白质相互作用网络推断从古网络重建中的演化动力学

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摘要

Cellular functions are based on the complex interplay of proteins, therefore the structure and dynamics of these protein-protein interaction (PPI) networks are the key to the functional understanding of cells. In the last years, large-scale PPI networks of several model organisms were investigated. A number of theoretical models have been developed to explain both the network formation and the current structure. Favored are models based on duplication and divergence of genes, as they most closely represent the biological foundation of network evolution. However, studies are often based on simulated instead of empirical data or they cover only single organisms. Methodological improvements now allow the analysis of PPI networks of multiple organisms simultaneously as well as the direct modeling of ancestral networks. This provides the opportunity to challenge existing assumptions on network evolution. We utilized present-day PPI networks from integrated datasets of seven model organisms and developed a theoretical and bioinformatic framework for studying the evolutionary dynamics of PPI networks. A novel filtering approach using percolation analysis was developed to remove low confidence interactions based on topological constraints. We then reconstructed the ancient PPI networks of different ancestors, for which the ancestral proteomes, as well as the ancestral interactions, were inferred. Ancestral proteins were reconstructed using orthologous groups on different evolutionary levels. A stochastic approach, using the duplication-divergence model, was developed for estimating the probabilities of ancient interactions from today's PPI networks. The growth rates for nodes, edges, sizes and modularities of the networks indicate multiplicative growth and are consistent with the results from independent static analysis. Our results support the duplication-divergence model of evolution and indicate fractality and multiplicative growth as general properties of the PPI network structure and dynamics.
机译:细胞功能基于蛋白质的复杂相互作用,因此,这些蛋白质-蛋白质相互作用(PPI)网络的结构和动力学是了解细胞功能的关键。近年来,研究了几种模型生物的大规模PPI网络。已经开发了许多理论模型来解释网络的形成和当前的结构。支持基于基因复制和发散的模型,因为它们最能代表网络进化的生物学基础。但是,研究通常基于模拟而非经验数据,或者仅涵盖单个生物。现在,方法上的改进使得可以同时分析多种生物的PPI网络以及对祖先网络进行直接建模。这提供了挑战网络演进现有假设的机会。我们利用来自七个模型生物的集成数据集中的当今PPI网络,并开发了理论和生物信息学框架来研究PPI网络的演化动力学。开发了一种使用渗滤分析的新颖过滤方法,以基于拓扑约束来消除低置信度相互作用。然后,我们重建了不同祖先的古老PPI网络,据此推断了祖先的蛋白质组以及祖先的相互作用。使用不同进化水平的直系同源物重建祖先蛋白。开发了一种使用复制-发散模型的随机方法,用于估计当今PPI网络中古代互动的可能性。网络的节点,边缘,大小和模块性的增长率表示乘法增长,并且与独立静态分析的结果一致。我们的结果支持演化的复制-发散模型,并表明分形和乘性增长是PPI网络结构和动力学的一般特性。

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