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Meta-analysis of global gene-expression profiles identify molecular signatures for histological subtypes of sarcomas

机译:全局基因表达谱的荟萃分析确定肉瘤组织学亚型的分子标志

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Sarcomas are rare mesenchymal malignancies and comprise over 50 histological subtypes. Sarcomas are not well studied because the number of cases of individual sarcoma is low. The utilization of public data, such as gene expression data, may allow for improvement in the novel discovery of sarcoma. In this study, to gain insight into histological subtypes of sarcoma from a public database, we performed a meta-analysis of the gene-expression profiles by surveying the data deposited in the Gene Expression Omnibus database from 2001 to 2014. The gene-expression data for 10 sarcoma subtypes and the gene-expression profiles for 1002 cases were selected for comparative analysis. Genes with histology-oriented molecular signatures were identified, and the results were verified by functional validation using gene oncology analysis. Pathway analysis suggested the existence of differential biological processes among sarcoma subtypes. Furthermore, as an application of the sarcoma gene expression datasets used in this study, we investigated the gene expression patterns of the targets of pazopanib to predict the response of sarcoma to pazopanib. We found that the gene expression distribution patterns of targets of pazopanib were without distinction among 10 subtypes of sarcoma. Taken together, we identified the tissue-specific genes of 10 subtypes of sarcoma by bioinformatics analysis; our results demonstrated the utility of sarcoma datasets in public databases and provide valuable information for future rare cancer research.
机译:肉瘤是罕见的间质性恶性肿瘤,包括50多种组织学亚型。肉瘤的研究较少,因为单个肉瘤的病例数很少。诸如基因表达数据之类的公共数据的利用可以允许改善肉瘤的新发现。在这项研究中,为了从公共数据库中深入了解肉瘤的组织学亚型,我们通过调查2001年至2014年存放在Gene Expression Omnibus数据库中的数据,对基因表达谱进行了荟萃分析。基因表达数据选择10例肉瘤亚型,选择1002例基因表达谱进行比较分析。鉴定了具有组织学导向分子特征的基因,并使用基因肿瘤学分析通过功能验证验证了结果。路径分析表明肉瘤亚型之间存在不同的生物学过程。此外,作为本研究中使用的肉瘤基因表达数据集的应用,我们调查了帕唑帕尼靶标的基因表达模式,以预测肉瘤对帕唑帕尼的反应。我们发现帕唑帕尼靶点的基因表达分布模式在肉瘤的10种亚型之间没有区别。综上所述,我们通过生物信息学分析鉴定了10种肉瘤亚型的组织特异性基因。我们的结果证明了肉瘤数据集在公共数据库中的实用性,并为将来的罕见癌症研究提供了有价值的信息。

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