Yixuan Chen; Wenhui Wang; Yingyao Zhou; Robert Shields; Sumit K. Chanda; Robert C. Elston; Jing Li

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Yixuan Chen; Wenhui Wang; Yingyao Zhou; Robert Shields; Sumit K. Chanda; Robert C. Elston; Jing Li In Silico Gene Prioritization by Integrating Multiple Data Sources…

A direct interaction between a pair of proteins either has been observed or has not been observed yet. The relationships between a candidate gene (encoding the corresponding protein) and all other genes/proteins can be thus defined. Such information can also be obtained from other data sources. For example, gene expression data can be transformed into gene co-expression networks by connecting genes with similar expression patterns. To represent known knowledge from biological pathways, a simple network can be built by connecting genes (or their products) that coexist in any pathway.
Source: Wikisource

Yixuan Chen; Wenhui Wang; Yingyao Zhou; Robert Shields; Sumit K. Chanda; Robert C. Elston; Jing Li In Silico Gene Prioritization by Integrating Multiple Data Sources…

For many data sources, one has to measure the relationships between candidate genes and disease genes directly. For other data sources, such as PPI networks, one can either choose to measure the gene-gene relationships locally, or measure them globally. Köhler et al. [11] have shown that global measures perform better than local measures for prioritizing disease genes using PPI networks. A fundamental issue in studies using a single data source is the potential bias of their results caused by the incompleteness and noise of one particular data set.
Source: Wikisource

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