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A Pathway Analysis Approach Using Petri Net

机译:一种使用Petri网的途径分析方法

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Perturbation in the normal function of the cell signaling pathways often leads to diseases. One of the factors that help understand the mechanism of diseases is the precise identification and investigation of perturbed signaling pathways. Pathway analysis methods have been developed as their purpose is to identify perturbed signaling pathways in given conditions. Among these methods, some consider the pathways topologies in their analysis, which are referred to as topology-based methods. Most of the topology-based methods used simple graph-based models to incorporate topology in their analysis, which have some limitations. We describe a new Pathway Analysis method using Petri net (PAPet) that uses the Petri net to model the signaling pathways and then propose an algorithm to measure the perturbation on a given pathway under a given condition. Modeling with Petri net has some advantages and could overcome the shortcomings of the simple graph-based models. We illustrate the capabilities of the proposed method using sensitivity, prioritization, mean reciprocal rank, and false-positive rate metrics on 36 real datasets from various diseases. The results of comparing PAPet with five pathway analysis methods FoPA, PADOG, GSEA, CePa and SPIA show that PAPet is the best one that provides a good compromise between all metrics. In addition, the results of applying methods to gene expression profiles in normal and Pancreatic Ductal Adenocarcinoma cancer (PDAC) samples show that the PAPet method achieves the best rank among others in finding the pathways that have been previously reported for PDAC. The PAPet method is available at https://github.com/fmansoori/PAPET.
机译:在细胞信号传导途径的正常功能中的扰动通常导致疾病。有助于理解疾病机制的因素之一是对扰动信号通路的精确鉴定和调查。已经开发了途径分析方法,因为它们的目的是在给定条件下识别扰动的信号传导途径。在这些方法中,有些方法考虑分析中的途径拓扑,这被称为基于拓扑的方法。大多数基于拓扑的方法使用了简单的基于图形的模型在分析中包含拓扑,这具有一些限制。我们描述了使用Petri网(PEPET)的新途径分析方法,该方法使用Petri网来模拟信号传导途径,然后提出一种算法在给定条件下测量给定途径的扰动。用Petri网建模有一些优势,可以克服简单的基于图形的模型的缺点。我们说明了在来自各种疾病的36个真实数据集上使用灵敏度,优先级,平均互惠级别和假阳性率指标的所提出的方法的能力。将PAPET与五种途径分析方法进行比较的结果FOPA,PADOG,GSEA,CEPA和SPIA表明,PIPET是在所有指标之间提供良好妥协的人。此外,将方法应用于正常和胰腺导管腺癌癌症(PDAC)样品中的基因表达谱的结果表明,纸巾方法在寻找以前报道的PDAC据报道的途径方面取得最佳等级。 PAPET方法可在https://github.com/fmansoori/papet中获得。

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