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首页> 外文期刊>International Journal of Innovative Computing Information and Control >PRIORITIZING DISEASE GENES BY INTEGRATING DOMAIN INTERACTIONS AND DISEASE MUTATIONS IN A PROTEIN-PROTEIN INTERACTION NETWORK
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PRIORITIZING DISEASE GENES BY INTEGRATING DOMAIN INTERACTIONS AND DISEASE MUTATIONS IN A PROTEIN-PROTEIN INTERACTION NETWORK

机译:通过将域相互作用和疾病突变整合到蛋白质-蛋白质相互作用网络中来优先确定疾病基因

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摘要

Complex diseases such as cancer are involved in inter-relationship among several genes, with protein-protein interaction networks being extensively studied in attempts to reveal the relationship between genes and diseases. Although these studies have shown promising results for identifying disease genes, it is not systemically studied that a protein functions differently depending on its interaction partners in the network since a protein can have multiple functions. In this study, domains are considered as functional units of proteins and we investigate how disease-related mutations in domains can be used to identify other disease genes in a domain-domain interaction network. We subsequently propose a computational method to predict disease genes based on the following two assumptions. The first assumption is that proteins closely interacting with known disease proteins in a protein interaction network are likely to be involved in the same disease. Second, although two proteins are in the same distance from known disease genes in a protein interaction network, the protein interacting with known disease genes through a domain with mutation is more likely to be related to the disease than other proteins that interact through domains with no mutation. As a result, when the proposed approach is applied to five diseases, it highly ranks disease-related genes compared to a model using only a protein interaction data set.
机译:诸如癌症之类的复杂疾病参与了多个基因之间的相互关系,人们广泛研究了蛋白质-蛋白质相互作用网络,以揭示基因与疾病之间的关系。尽管这些研究已经显示出鉴定疾病基因的有希望的结果,但是由于蛋白质可以具有多种功能,因此尚未系统地研究蛋白质的功能取决于其在网络中的相互作用伙伴。在这项研究中,域被认为是蛋白质的功能单元,我们研究域中与疾病相关的突变如何用于识别域-域相互作用网络中的其他疾病基因。随后,我们基于以下两个假设提出了一种预测疾病基因的计算方法。第一个假设是,蛋白质相互作用网络中与已知疾病蛋白质紧密相互作用的蛋白质很可能与同一疾病有关。其次,尽管两种蛋白质在蛋白质相互作用网络中与已知疾病基因的距离相同,但是与通过不带结构域相互作用的其他蛋白质相比,通过具有突变的域与已知疾病基因相互作用的蛋白质更可能与疾病相关突变。结果,当将所提出的方法应用于五种疾病时,与仅使用蛋白质相互作用数据集的模型相比,该方法将疾病相关基因高度排名。

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