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通过与基因表达数据整合揭示的蛋白质功能连接网络中的动态变化。

Dynamic changes in protein functional linkage networks revealed by integration with gene expression data.

作者信息

Hegde Shubhada R, Manimaran Palanisamy, Mande Shekhar C

机构信息

Centre for DNA Fingerprinting and Diagnostics, Nacharam, Hyderabad, India.

出版信息

PLoS Comput Biol. 2008 Nov;4(11):e1000237. doi: 10.1371/journal.pcbi.1000237. Epub 2008 Nov 28.

Abstract

Response of cells to changing environmental conditions is governed by the dynamics of intricate biomolecular interactions. It may be reasonable to assume, proteins being the dominant macromolecules that carry out routine cellular functions, that understanding the dynamics of protein:protein interactions might yield useful insights into the cellular responses. The large-scale protein interaction data sets are, however, unable to capture the changes in the profile of protein:protein interactions. In order to understand how these interactions change dynamically, we have constructed conditional protein linkages for Escherichia coli by integrating functional linkages and gene expression information. As a case study, we have chosen to analyze UV exposure in wild-type and SOS deficient E. coli at 20 minutes post irradiation. The conditional networks exhibit similar topological properties. Although the global topological properties of the networks are similar, many subtle local changes are observed, which are suggestive of the cellular response to the perturbations. Some such changes correspond to differences in the path lengths among the nodes of carbohydrate metabolism correlating with its loss in efficiency in the UV treated cells. Similarly, expression of hubs under unique conditions reflects the importance of these genes. Various centrality measures applied to the networks indicate increased importance for replication, repair, and other stress proteins for the cells under UV treatment, as anticipated. We thus propose a novel approach for studying an organism at the systems level by integrating genome-wide functional linkages and the gene expression data.

摘要

细胞对不断变化的环境条件的反应受复杂生物分子相互作用动力学的支配。鉴于蛋白质是执行常规细胞功能的主要大分子,那么可以合理地假设,了解蛋白质与蛋白质之间的相互作用动力学可能会为细胞反应提供有用的见解。然而,大规模的蛋白质相互作用数据集无法捕捉蛋白质与蛋白质相互作用图谱的变化。为了了解这些相互作用如何动态变化,我们通过整合功能联系和基因表达信息构建了大肠杆菌的条件蛋白质联系。作为一个案例研究,我们选择分析野生型和SOS缺陷型大肠杆菌在辐照后20分钟的紫外线暴露情况。条件网络表现出相似的拓扑特性。尽管网络的全局拓扑特性相似,但仍观察到许多细微的局部变化,这暗示了细胞对扰动的反应。一些这样的变化对应于碳水化合物代谢节点之间路径长度的差异,这与紫外线处理细胞中其效率的降低相关。同样,在独特条件下枢纽蛋白的表达反映了这些基因的重要性。应用于网络的各种中心性度量表明,正如预期的那样,紫外线处理下的细胞中复制、修复和其他应激蛋白的重要性增加。因此,我们提出了一种通过整合全基因组功能联系和基因表达数据在系统水平上研究生物体的新方法。

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