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Candidate gene prioritization for chronic obstructive pulmonary disease using expression information in protein–protein interaction networks

机译:蛋白质 - 蛋白质相互作用网络中表达信息的慢性阻塞性肺疾病的候选基因优先级

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摘要

Identifying or prioritizing genes for chronic obstructive pulmonary disease (COPD), one type of complex disease, is particularly important for its prevention and treatment. In this paper, a novel method was proposed to Prioritize genes using Expression information in Protein–protein interaction networks with disease risks transferred between genes (abbreviated as PEP). A weighted COPD PPI network was constructed using expression information and then COPD candidate genes were prioritized based on their corresponding disease risk scores in descending order. Further analysis demonstrated that the PEP method was robust in prioritizing disease candidate genes, and superior to other existing prioritization methods exploiting either topological or functional information. Top-ranked COPD candidate genes and their significantly enriched functions were verified to be related to COPD. The top 200 candidate genes might be potential disease genes in the diagnosis and treatment of COPD. The proposed method could provide new insights to the research of prioritizing candidate genes of COPD or other complex diseases with expression information from sequencing or microarray data.
机译:鉴定或优先考虑慢性阻塞性肺病(COPD),一种复杂疾病的基因,对于预防和治疗尤为重要。本文用蛋白质 - 蛋白质相互作用网络中的表达信息提出了一种新方法,在基因之间转移的疾病风险(缩写为PEP)。使用表达信息构建加权COPD PPI网络,然后基于其降序的相应疾病风险评分优先考虑COPD候选基因。进一步的分析证明,PEP方法在优先考虑疾病候选基因方面具有稳健性,并且优于利用拓扑或功能信息的其他优先级方法。验证了一流的COPD候选基因及其重要富集的职能与COPD相关。前200名候选基因可能是诊断和治疗COPD中的潜在疾病基因。所提出的方法可以对研究COPD或其他复杂性疾病的优先考虑以及来自测序或微阵列数据的表达信息进行研究的新见解。

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