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Analysis of gene expression profiles in normal and neoplastic ovarian tissue samples identifies candidate molecular markers of epithelial ovarian cancer

机译:正常和赘生性基因表达谱分析 卵巢组织样本识别候选分子标记 上皮性卵巢癌

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摘要

Epithelial ovarian cancer is the leading cause of death from gynecologic cancer, in part because of the lack of effective early detection methods. Although alterations of several genes, such as c-erb-B2, c-myc, and p53, have been identified in a significant fraction of ovarian cancers, none of these mutations are diagnostic of malignancy or predictive of tumor behavior over time. Here, we used oligonucleotide microarrays with probe sets complementary to >6,000 human genes to identify genes whose expression correlated with epithelial ovarian cancer. We extended current microarray technology by simultaneously hybridizing ovarian RNA samples in a highly parallel manner to a single glass wafer containing 49 individual oligonucleotide arrays separated by gaskets within a custom-built chamber (termed “array-of-arrays”). Hierarchical clustering of the expression data revealed distinct groups of samples. Normal tissues were readily distinguished from tumor tissues, and tumors could be further subdivided into major groupings that correlated both to histological and clinical observations, as well as cell type-specific gene expression. A metric was devised to identify genes whose expression could be considered ideal for molecular determination of epithelial ovarian malignancies. The list of genes generated by this method was highly enriched for known markers of several epithelial malignancies, including ovarian cancer. This study demonstrates the rapidity with which large amounts of expression data can be generated. The results highlight important molecular features of human ovarian cancer and identify new genes as candidate molecular markers.
机译:上皮性卵巢癌是妇科癌症死亡的主要原因,部分原因是缺乏有效的早期检测方法。尽管已在相当一部分卵巢癌中鉴定出几种基因的改变,例如c-erb-B2,c-myc和p53,但这些突变均不能诊断出恶性或随时间推移可预测肿瘤行为。在这里,我们使用寡核苷酸微阵列和与> 6,000个人类基因互补的探针组来鉴定其表达与上皮性卵巢癌相关的基因。我们通过以高度平行的方式同时将卵巢RNA样品与一个玻璃晶片进行杂交,从而扩展了当前的微阵列技术,该玻璃晶片包含49个单独的寡核苷酸阵列,这些寡核苷酸阵列被定制腔室内的垫片隔开(称为“阵列阵列”)。表达数据的层次聚类揭示了不同的样本组。正常组织很容易与肿瘤组织区分开,并且肿瘤可以进一步细分为与组织学和临床观察以及细胞相关的主要类别。 类型特异性基因表达。设计了一种指标来鉴定基因 其表达被认为是分子测定的理想选择 上皮性卵巢恶性肿瘤由此产生的基因列表 该方法高度丰富了几种上皮的已知标志物 恶性肿瘤,包括卵巢癌。这项研究表明 快速生成大量表达数据的方法。 结果突出了人类卵巢的重要分子特征 并鉴定新基因作为候选分子标记。

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