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Analysis of heat kernel highlights the strongly modular and heat-preserving structure of proteins

机译:热核分析突出了蛋白质的强模块化和保温结构

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摘要

In this paper, we study the structure and dynamical properties of protein contact networks with respect to other biological networks, together with simulated archetypal models acting as probes. We consider both classical topological descriptors, such as modularity and statistics of the shortest paths, and different interpretations in terms of diffusion provided by the discrete heat kernel, which is elaborated from the normalized graph Laplacians. A principal component analysis shows high discrimination among the network types, by considering both the topological and heat kernel based vector characterizations. Furthermore, a canonical correlation analysis demonstrates the strong agreement among those two characterizations, providing thus an important justification in terms of interpretability for the heat kernel. Finally, and most importantly, the focused analysis of the heat kernel provides a way to yield insights on the fact that proteins have to satisfy specific structural design constraints that the other considered networks do not need to obey. Notably, the heat trace decay of an ensemble of varying-size proteins denotes subdiffusion, a peculiar property of proteins. (C) 2015 Elsevier B.V. All rights reserved.
机译:在本文中,我们研究了蛋白质接触网络相对于其他生物网络的结构和动力学性质,并以模拟的原型模型作为探针。我们考虑了经典的拓扑描述符,例如模块性和最短路径的统计信息,以及离散热核所提供的扩散方面的不同解释,这是从归一化图拉普拉斯算子中阐述的。主成分分析表明,通过考虑基于拓扑和基于热核的矢量特征,可以高度区分网络类型。此外,规范的相关性分析证明了这两个特性之间的强烈一致性,从而为热核的可解释性提供了重要的依据。最后,也是最重要的是,对热量核心的集中分析提供了一种方法,使人们可以洞察蛋白质必须满足特定结构设计约束这一事实,而其他考虑的网络则无需遵守这些约束。值得注意的是,各种大小的蛋白质集合的热迹线衰减表示亚扩散,即蛋白质的特殊性质。 (C)2015 Elsevier B.V.保留所有权利。

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