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Pathway-GPS 和 SIGORA:基于基因对特征的过表达来识别相关途径。

Pathway-GPS and SIGORA: identifying relevant pathways based on the over-representation of their gene-pair signatures.

机构信息

Animal & Bioscience Research Department, AGRIC, Teagasc , Grange, Dunsany, Co. Meath , Ireland ; Department of Molecular Biology and Biochemistry, Simon Fraser University , Burnaby, British Columbia , Canada.

Department of Molecular Biology and Biochemistry, Simon Fraser University , Burnaby, British Columbia , Canada.

出版信息

PeerJ. 2013 Dec 19;1:e229. doi: 10.7717/peerj.229.

Abstract

Motivation. Predominant pathway analysis approaches treat pathways as collections of individual genes and consider all pathway members as equally informative. As a result, at times spurious and misleading pathways are inappropriately identified as statistically significant, solely due to components that they share with the more relevant pathways. Results. We introduce the concept of Pathway Gene-Pair Signatures (Pathway-GPS) as pairs of genes that, as a combination, are specific to a single pathway. We devised and implemented a novel approach to pathway analysis, Signature Over-representation Analysis (SIGORA), which focuses on the statistically significant enrichment of Pathway-GPS in a user-specified gene list of interest. In a comparative evaluation of several published datasets, SIGORA outperformed traditional methods by delivering biologically more plausible and relevant results. Availability. An efficient implementation of SIGORA, as an R package with precompiled GPS data for several human and mouse pathway repositories is available for download from http://sigora.googlecode.com/svn/.

摘要

动机。主要的通路分析方法将通路视为单个基因的集合,并认为所有通路成员的信息都是同等重要的。因此,有时由于与更相关的通路共享的成分,虚假和误导性的通路会被不恰当地识别为具有统计学意义。

结果。我们提出了通路基因对特征(Pathway-GPS)的概念,即作为组合,对单个通路具有特异性的基因对。我们设计并实现了一种新的通路分析方法,即特征过表达分析(SIGORA),该方法专注于通路基因对在用户指定的感兴趣基因列表中的统计学显著富集。在对几个已发表数据集的比较评估中,SIGORA 通过提供更合理和相关的生物学结果,优于传统方法。

可用性。SIGORA 的高效实现,作为一个带有预编译的 GPS 数据的 R 包,用于几个人类和小鼠通路库,可从 http://sigora.googlecode.com/svn/ 下载。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5ab1/3883547/ae6279c001e0/peerj-01-229-g001.jpg

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