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首页> 外文期刊>Protein Science: A Publication of the Protein Society >Integration of protein motions with molecular networks reveals different mechanisms for permanent and transient interactions.
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Integration of protein motions with molecular networks reveals different mechanisms for permanent and transient interactions.

机译:蛋白质运动与分子网络的整合揭示了永久性和短暂性相互作用的不同机制。

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The integration of molecular networks with other types of data, such as changing levels of gene expression or protein-structural features, can provide richer information about interactions than the simple node-and-edge representations commonly used in the network community. For example, the mapping of 3D-structural data onto networks enables classification of proteins into singlish- or multi-interface hubs (depending on whether they have >2 interfaces). Similarly, interactions can be classified as permanent or transient, depending on whether their interface is used by only one or by multiple partners. Here, we incorporate an additional dimension into molecular networks: dynamic conformational changes. We parse the entire PDB structural databank for alternate conformations of proteins and map these onto the protein interaction network, to compile a first version of the Dynamic Structural Interaction Network (DynaSIN). We make this network available as a readily downloadable resource file, and we then use it to address a variety of downstream questions. In particular, we show that multi-interface hubs display a greater degree of conformational change than do singlish-interface ones; thus, they show more plasticity which perhaps enables them to utilize more interfaces for interactions. We also find that transient associations involve smaller conformational changes than permanent ones. Although this may appear counterintuitive, it is understandable in the following framework: as proteins involved in transient interactions shuttle between interchangeable associations, they interact with domains that are similar to each other and so do not require drastic structural changes for their activity. We provide evidence for this hypothesis through showing that interfaces involved in transient interactions bind fewer classes of domains than those in a control set.
机译:分子网络与其他类型数据的集成,例如基因表达水平的变化或蛋白质结构特征的变化,可以提供比网络社区中常用的简单节点表示法更丰富的相互作用信息。例如,将3D结构数据映射到网络上可以将蛋白质分类为单个或多个接口集线器(取决于它们是否具有> 2个接口)。同样,根据交互的接口是仅被一个伙伴还是由多个伙伴使用,可以将交互分为永久性或临时性。在这里,我们在分子网络中增加了一个附加维度:动态构象变化。我们解析整个PDB结构数据库中蛋白质的替代构象,并将其映射到蛋白质相互作用网络上,以编译动态结构相互作用网络(DynaSIN)的第一个版本。我们将该网络作为易于下载的资源文件提供,然后使用它来解决各种下游问题。特别是,我们表明,多接口集线器显示的构象变化程度要高于单个接口集线器。因此,它们显示出更多的可塑性,这也许使它们能够利用更多的界面进行交互。我们还发现,瞬时关联所涉及的构象变化要比永久性联想小。尽管这可能看起来违反直觉,但在以下框架中是可以理解的:由于参与瞬时相互作用的蛋白质在可互换的缔合之间穿梭,它们与彼此相似的域相互作用,因此不需要对其活性进行剧烈的结构改变。我们通过证明瞬时相互作用中涉及的界面结合的域类别少于对照组中的域类别,为这一假设提供了证据。

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