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基于信息内容的大肠杆菌基因调控网络拓扑属性模型。

Information content based model for the topological properties of the gene regulatory network of Escherichia coli.

机构信息

Department of Physics, Faculty of Sciences and Letters, Istanbul Technical University, Maslak 34469, Istanbul, Turkey.

出版信息

J Theor Biol. 2010 Apr 7;263(3):281-94. doi: 10.1016/j.jtbi.2009.11.017. Epub 2009 Dec 3.

Abstract

Gene regulatory networks (GRN) are being studied with increasingly precise quantitative tools and can provide a testing ground for ideas regarding the emergence and evolution of complex biological networks. We analyze the global statistical properties of the transcriptional regulatory network of the prokaryote Escherichia coli, identifying each operon with a node of the network. We propose a null model for this network using the content-based approach applied earlier to the eukaryote Saccharomyces cerevisiae (Balcan et al., 2007). Random sequences that represent promoter regions and binding sequences are associated with the nodes. The length distributions of these sequences are extracted from the relevant databases. The network is constructed by testing for the occurrence of binding sequences within the promoter regions. The ensemble of emergent networks yields an exponentially decaying in-degree distribution and a putative power law dependence for the out-degree distribution with a flat tail, in agreement with the data. The clustering coefficient, degree-degree correlation, rich club coefficient and k-core visualization all agree qualitatively with the empirical network to an extent not yet achieved by any other computational model, to our knowledge. The significant statistical differences can point the way to further research into non-adaptive and adaptive processes in the evolution of the E. coli GRN.

摘要

基因调控网络(GRN)正在被越来越精确的定量工具研究,并且可以为关于复杂生物网络的出现和进化的想法提供一个试验场。我们分析了原核生物大肠杆菌的转录调控网络的全局统计特性,将每个操纵子识别为网络的一个节点。我们使用之前应用于真核生物酿酒酵母的基于内容的方法(Balcan 等人,2007)为该网络提出了一个零模型。代表启动子区域和结合序列的随机序列与节点相关联。这些序列的长度分布从相关数据库中提取。通过在启动子区域内检测结合序列来构建网络。涌现网络的集合产生了一个指数衰减的入度分布和一个可能的幂律外度分布,具有平坦的尾部,与数据一致。聚类系数、度-度相关性、丰富俱乐部系数和 k-核可视化都在一定程度上与经验网络一致,这在我们所知的范围内,尚未被任何其他计算模型实现。显著的统计差异可以为进一步研究大肠杆菌 GRN 进化中的非适应性和适应性过程指明方向。

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