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integRATE: a desirability-based data integration framework for the prioritization of candidate genes across heterogeneous omics and its application to preterm birth

机译:integRATE:基于期望的数据集成框架用于跨异构组学对候选基因的优先排序及其在早产中的应用

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摘要

BackgroundThe integration of high-quality, genome-wide analyses offers a robust approach to elucidating genetic factors involved in complex human diseases. Even though several methods exist to integrate heterogeneous omics data, most biologists still manually select candidate genes by examining the intersection of lists of candidates stemming from analyses of different types of omics data that have been generated by imposing hard (strict) thresholds on quantitative variables, such as P-values and fold changes, increasing the chance of missing potentially important candidates.
机译:背景技术高质量,全基因组分析的集成为阐明复杂人类疾病涉及的遗传因素提供了一种可靠的方法。即使有几种方法可以整合异构组学数据,但大多数生物学家仍通过检查候选列表的交集来手动选择候选基因,这些候选列表是根据对定量变量施加硬(严格)阈值而产生的不同类型的组学数据的分析得出的,例如P值和倍数变化,增加了错过潜在重要候选人的机会。

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