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Combining partial correlation and an information theory approach to the reversed engineering of gene co-expression networks

机译:结合部分相关和信息论方法对基因共表达网络进行逆向工程

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MOTIVATION: We present PCIT, an algorithm for the reconstruction of gene co-expression networks (GCN) that combines the concept partial correlation coefficient with information theory to identify significant gene to gene associations defining edges in the reconstruction of GCN. The properties of PCIT are examined in the context of the topology of the reconstructed network including connectivity structure, clustering coefficient and sensitivity. RESULTS: We apply PCIT to a series of simulated datasets with varying levels of complexity in terms of number of genes and experimental conditions, as well as to three real datasets. Results show that, as opposed to the constant cutoff approach commonly used in the literature, the PCIT algorithm can identify and allow for more moderate, yet not less significant, estimates of correlation (r) to still establish a connection in the GCN. We show that PCIT is more sensitive than established methods and capable of detecting functionally validated gene-gene interactions coming from absolute r values as low as 0.3. These bona fide associations, which often relate to genes with low variation in expression patterns, are beyond the detection limits of conventional fixed-threshold methods, and would be overlooked by studies relying on those methods. AVAILABILITY: FORTRAN 90 source code to perform the PCIT algorithm is available as Supplementary File 1.
机译:动机:我们提出PCIT,一种用于重建基因共表达网络(GCN)的算法,该算法将概念部分相关系数与信息论相结合,以识别在GCN重建中定义边缘的重要基因与基因的关联。在重建网络的拓扑结构中检查PCIT的属性,包括连接结构,聚类系数和灵敏度。结果:我们将PCIT应用于一系列在基因数量和实验条件方面具有不同复杂程度的模拟数据集,以及三个真实数据集。结果表明,与文献中常用的恒定截止方法相反,PCIT算法可以识别并允许更适度但不那么重要的相关性估计值(r)来在GCN中仍然建立连接。我们表明,PCIT比已建立的方法更敏感,并且能够检测功能验证的基因-基因相互作用,其绝对值低至0.3。这些善意的联系通常与表达模式变异少的基因有关,超出了常规固定阈值方法的检测范围,并且依赖于这些方法的研究会忽略它们。可用性:执行PCIT算法的FORTRAN 90源代码可作为补充文件1获得。

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