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Systems-based biological concordance and predictive reproducibility of gene set discovery methods in cardiovascular disease

机译:基于系统的生物学一致性和基因组发现方法在心血管疾病中的预测可重复性

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摘要

The discovery of novel disease biomarkers is a crucial challenge for translational bioinformatics. Demonstration of both their classification power and reproducibility across independent datasets are essential requirements to assess their potential clinical relevance. Small datasets and multiplicity of putative biomarker sets may explain lack of predictive reproducibility. Studies based on pathway-driven discovery approaches have suggested that, despite such discrepancies, the resulting putative biomarkers tend to be implicated in common biological processes. Investigations of this problem have been mainly focused on datasets derived from cancer research. We investigated the predictive and. functional concordance of five methods for discovering putative biomarkers in four independently-generated datasets from the cardiovascular disease domain. A diversity of biosignatures was identified by the different methods. However, we found strong biological process concordance between them, especially in the case of methods based on gene set analysis. With a few exceptions, we observed lack of classification reproducibility using independent datasets. Partial overlaps between our putative sets of biomarkers and the primary studies exist. Despite the observed limitations, pathway-driven or gene set analysis can predict potentially novel biomarkers and can jointly point to biomedically-relevant underlying molecular mechanisms.
机译:新型疾病生物标志物的发现是转化生物信息学的关键挑战。在独立数据集中展示其分类能力和可重复性是评估其潜在临床相关性的基本要求。小数据集和推定的生物标志物集的多样性可能解释了缺乏可预测的可重复性。基于途径驱动的发现方法的研究表明,尽管存在此类差异,但最终的推定生物标志物往往与常见的生物过程有关。这个问题的研究主要集中在癌症研究的数据集上。我们调查了预测和。在心血管疾病领域的四个独立生成的数据集中发现推定生物标志物的五种方法的功能一致性。通过不同的方法可以鉴定出多种生物特征。但是,我们发现它们之间有很强的生物学过程一致性,特别是在基于基因集分析的方法中。除少数例外,我们观察到使用独立数据集的分类再现性不足。我们推定的生物标志物组与基础研究之间存在部分重叠。尽管观察到局限性,途径驱动或基因组分析仍可以预测潜在的新型生物标志物,并且可以共同指出与生物医学相关的潜在分子机制。

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