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相互作用路径促进剪接体对级联效应的模块整合和网络稳定性。

Interaction paths promote module integration and network-level robustness of spliceosome to cascading effects.

机构信息

Departamento de Ecologia, Instituto de Biociências, Universidade de São Paulo, Rua do Matão, Travessa 14, 05508-900, São Paulo, SP, Brazil.

Departamento de Biologia Animal, Instituto de Biologia, Universidade Estadual de Campinas, Rua Monteiro Lobato 255, 13083-862, Campinas, SP, Brazil.

出版信息

Sci Rep. 2018 Nov 28;8(1):17441. doi: 10.1038/s41598-018-35160-6.

Abstract

The functionality of distinct types of protein networks depends on the patterns of protein-protein interactions. A problem to solve is understanding the fragility of protein networks to predict system malfunctioning due to mutations and other errors. Spectral graph theory provides tools to understand the structural and dynamical properties of a system based on the mathematical properties of matrices associated with the networks. We combined two of such tools to explore the fragility to cascading effects of the network describing protein interactions within a key macromolecular complex, the spliceosome. Using S. cerevisiae as a model system we show that the spliceosome network has more indirect paths connecting proteins than random networks. Such multiplicity of paths may promote routes to cascading effects to propagate across the network. However, the modular network structure concentrates paths within modules, thus constraining the propagation of such cascading effects, as indicated by analytical results from the spectral graph theory and by numerical simulations of a minimal mathematical model parameterized with the spliceosome network. We hypothesize that the concentration of paths within modules favors robustness of the spliceosome against failure, but may lead to a higher vulnerability of functional subunits, which may affect the temporal assembly of the spliceosome. Our results illustrate the utility of spectral graph theory for identifying fragile spots in biological systems and predicting their implications.

摘要

不同类型蛋白质网络的功能取决于蛋白质-蛋白质相互作用的模式。需要解决的问题是理解蛋白质网络的脆弱性,以预测由于突变和其他错误导致的系统故障。谱图理论提供了基于与网络相关的矩阵的数学性质来理解系统的结构和动力学特性的工具。我们结合了这两种工具来探索描述剪接体中蛋白质相互作用的网络对级联效应的脆弱性。使用酿酒酵母作为模型系统,我们表明剪接体网络中连接蛋白质的间接路径比随机网络多。这种路径的多样性可能会促进级联效应传播到网络中。然而,模块化网络结构将路径集中在模块内,从而限制了级联效应的传播,这一点可以通过谱图理论的分析结果和用剪接体网络参数化的最小数学模型的数值模拟来证实。我们假设模块内路径的集中有利于剪接体抵抗故障的稳定性,但可能会导致功能亚基的脆弱性增加,从而可能影响剪接体的时间组装。我们的结果说明了谱图理论在识别生物系统中的脆弱点和预测其影响方面的实用性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3b44/6261937/a90ea1378410/41598_2018_35160_Fig1_HTML.jpg

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