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利用 microRNA 表达进行肾肿瘤的准确分子分类。

Accurate molecular classification of renal tumors using microRNA expression.

机构信息

Department of Pathology, Sheba Medical Center, Ramat-Gan, Israel.

出版信息

J Mol Diagn. 2010 Sep;12(5):687-96. doi: 10.2353/jmoldx.2010.090187. Epub 2010 Jul 1.

Abstract

Subtypes of renal tumors have different genetic backgrounds, prognoses, and responses to surgical and medical treatment, and their differential diagnosis is a frequent challenge for pathologists. New biomarkers can help improve the diagnosis and hence the management of renal cancer patients. We extracted RNA from 71 formalin-fixed paraffin-embedded (FFPE) renal tumor samples and measured expression of more than 900 microRNAs using custom microarrays. Clustering revealed similarity in microRNA expression between oncocytoma and chromophobe subtypes as well as between conventional (clear-cell) and papillary tumors. By basing a classification algorithm on this structure, we followed inherent biological correlations and could achieve accurate classification using few microRNAs markers. We defined a two-step decision-tree classifier that uses expression levels of six microRNAs: the first step uses expression levels of hsa-miR-210 and hsa-miR-221 to distinguish between the two pairs of subtypes; the second step uses either hsa-miR-200c with hsa-miR-139-5p to identify oncocytoma from chromophobe, or hsa-miR-31 with hsa-miR-126 to identify conventional from papillary tumors. The classifier was tested on an independent set of FFPE tumor samples from 54 additional patients, and identified correctly 93% of the cases. Validation on qRT-PCR platform demonstrated high correlation with microarray results and accurate classification. MicroRNA expression profiling is a very effective molecular bioassay for classification of renal tumors and can offer a quantitative standardized complement to current methods of tumor classification.

摘要

肾肿瘤的亚型具有不同的遗传背景、预后以及对手术和药物治疗的反应,因此对病理学家来说,对其进行鉴别诊断是一项常见的挑战。新的生物标志物可以帮助改善对肾癌患者的诊断,进而改善其治疗效果。我们从 71 例福尔马林固定石蜡包埋(FFPE)的肾肿瘤样本中提取 RNA,使用定制的 microarray 测量了超过 900 个 microRNA 的表达。聚类分析显示,嗜酸细胞瘤和嫌色细胞瘤亚型之间以及透明细胞癌和乳头状肿瘤之间的 microRNA 表达具有相似性。通过基于这种结构的分类算法,我们遵循了固有的生物学相关性,仅使用少数几个 microRNA 标志物就可以实现准确的分类。我们定义了一个两步决策树分类器,该分类器使用 6 个 microRNA 的表达水平:第一步使用 hsa-miR-210 和 hsa-miR-221 的表达水平来区分两对亚型;第二步使用 hsa-miR-200c 和 hsa-miR-139-5p 来区分嗜酸细胞瘤和嫌色细胞瘤,或者使用 hsa-miR-31 和 hsa-miR-126 来区分透明细胞癌和乳头状肿瘤。该分类器在 54 例来自另外患者的独立 FFPE 肿瘤样本中进行了测试,正确识别了 93%的病例。在 qRT-PCR 平台上进行验证表明,其与 microarray 结果具有高度相关性,并能实现准确的分类。microRNA 表达谱分析是一种非常有效的肾肿瘤分类的分子生物检测方法,它可以为肿瘤分类的现有方法提供定量的标准化补充。

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