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Proteomic investigation of intra-tumor heterogeneity using network-based contextualization - A case study on prostate cancer

机译:基于网络的上下文化的肿瘤内异质性蛋白质组学研究 - 一种前列腺癌的案例研究

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摘要

Cancer is a heterogeneous disease, confounding the identification of relevant markers and drug targets. Network based analysis is robust against noise, potentially offering a promising approach towards biomarker identification. We describe here the application of two network-based methods, qPSP (Quantitative Proteomics Signature Profiling) and PFSNet (Paired Fuzzy SubNetworks), in an intra-tissue proteome data set of prostate tissue samples. Despite high basal variation, we find that traditional statistical analysis may exaggerate the extent of heterogeneity. We also report that network-based analysis outperforms protein-based feature selection with concomitantly higher cross-validation accuracy. Overall, network-based analysis provides emergent signal that boosts sensitivity while retaining good precision. It is a potential means of circumventing heterogeneity for stable biomarker discovery.
机译:癌症是一种异质疾病,混淆了相关标志物和药物靶标的鉴定。 基于网络的分析对抗噪声是强大的,可能提供有希望的生物标志物识别方法。 我们在此描述了两个基于网络的方法,QPSP(定量蛋白质组学特色分析)和PFSNET(成对模糊子网),在网状组织样本的组织内蛋白组数据集中。 尽管基础变化高,但我们发现传统的统计分析可能夸大异质性的程度。 我们还报告说,基于网络的分析优于基于蛋白质的特征选择,伴随着更高的交叉验证精度。 总的来说,基于网络的分析提供了突出的信号,可以提高灵敏度,同时保持良好的精度。 它是围绕稳定生物标志物发现的异质性的潜在手段。

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