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Mining Gene Expression Database for Primary Human Disease Tissues

机译:用于原发性疾病组织的挖掘基因表达数据库

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Studies of gene expression in primary human disease tissue often span several years in order to achieve reasonably large sample sizes and to collect patient clinical information making this data particularly valuable. Due to the lack of a central repository, this data has only been available through disparate and non-publicly accessible sources following publication. We developed Disease-to-Gene Expression Mapper (D-GEM) as a publically accessible database and data mining toolbox for microarray data of human primary disease tissue. A statistical pipeline has also been implemented to identify genes over-expressed in disease tissue samples in comparison with normal control samples, or genes whose expression values are associated with clinical parameters such as patient survival rate. One potential application of this data is the identification of pathway specific cancer prognosis markers. By applying a novel, gene signatures for cancer prognosis in the context of known biological pathways in cancer development were identified and confirmed.
机译:原发性人类疾病组织中基因表达的研究经常跨越几年以达到合理大的样本尺寸,并收集患者临床信息,使得这种数据特别有价值。由于缺少中央存储库,此数据仅通过出版后的不同和非公开可访问的源可用。我们将疾病到基因表达映射器(D-Gem)作为公开访问的数据库和数据挖掘工具箱和用于人原发性疾病组织的微阵列数据。还已经实施了统计管道以鉴定与正常对照样品相比,鉴定在疾病组织样品中过度表达的基因,或其表达值与临床参数相关的基因,例如患者存活率。该数据的一个潜在应用是途径特异性癌症预后标志物的鉴定。通过应用一种新颖的,鉴定癌症发育中已知生物途径的背景下的癌症预后的基因签名并确认。

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