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A Topology-Based Score for Pathway Enrichment

机译:基于拓扑的途径富集分数

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摘要

Investigators require intuitive tools to rationalize complex datasets generated by transcriptional profiling experiments. Pathway analysis methods, in which differentially expressed genes are mapped to databases of reference pathways to facilitate assessment of relative enrichment, lead investigators more effectively to biologically testable hypotheses. However, once a set of differentially expressed genes is isolated, pathway analysis approaches tend to ignore rich gene expression information and, moreover, do not exploit relationships between transcripts. In this article, we report the development of a new method in which both pathway topology and the magnitude of gene expression changes inform the scoring system, thereby providing a powerful filter in the enrichment of biologically relevant information. When four sample datasets were evaluated with this method, literature mining confirmed that those pathways germane to the physiological process under investigation were highlighted by our method relative to z-score overrepresentation calculations. Moreover, non-relevant processes were downgraded using the method described herein. The inclusion of expression and topological data in the calculation of a pathway regulation score (PRS) facilitated discrimination of key processes in real biological datasets. Specifically, by combining fold-change data for those transcripts exceeding a significance threshold, and by taking into account the potential for altered gene expression to impact upon downstream transcription, one may readily identify those pathways most relevant to pathophysiological processes.
机译:研究人员需要直观的工具来合理化由转录谱分析实验生成的复杂数据集。途径分析方法将差异表达的基因定位到参考途径数据库中,以促进相对富集的评估,从而使研究人员更有效地提出了可生物学验证的假设。但是,一旦分离出一组差异表达的基因,途径分析方法往往会忽略丰富的基因表达信息,而且不会利用转录本之间的关系。在本文中,我们报告了一种新方法的开发,该方法的途径拓扑结构和基因表达变化的幅度均会影响评分系统,从而为生物学相关信息的丰富提供了有力的过滤器。当使用此方法评估四个样本数据集时,文献挖掘证实,相对于z得分过度代表计算,我们的方法突出显示了与研究中的生理过程密切相关的那些路径。此外,使用本文所述的方法将不相关的过程降级。在表达途径和拓扑数据的过程中,将路径调节评分(PRS)计算在内,有助于区分真实生物学数据集中的关键过程。具体来说,通过结合超过显着性阈值的那些转录本的倍数变化数据,并考虑到改变的基因表达影响下游转录的潜力,人们可以很容易地确定与病理生理过程最相关的那些途径。

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