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Discovering breast cancer prognostic biomarkers using a novel feature selection tool

机译:使用新型特征选择工具发现乳腺癌预后生物标志物

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We will present a case study of applying a novel feature selection tool to breast cancer biomarker discovery. Using a publicly available gene expression microarray dataset, we discovered prognostic biomarkers for various patient subpopulations stratified by clinical variables. We then used independent datasets consist of lymph node negative patients to validate 20 potential biomarkers The results show that our 20-gene signature as well as many of the discovery individual prognostic biomarkers can achieve comparable or better performance compared to the clinical or gene signature based prognostic risk scores, especially for young ER+ patients. These discovered biomarkers have the potential to be used in clinical settings to identify a subset of the lymph-node-negative (Node-) and estrogen-receptor-positive (ER+) patients who are at a higher risk of relapse and should be treated more aggressively. We will also discuss good practices in industrial biomarker discovery.
机译:我们将介绍将新型特征选择工具应用于乳腺癌生物标志物发现的案例研究。使用可公开获得的基因表达微阵列数据集,我们发现了按临床变量分层的各种患者亚群的预后生物标志物。然后,我们使用由淋巴结阴性患者组成的独立数据集来验证20种潜在的生物标志物。结果表明,与基于临床或基因标志的预后相比,我们的20个基因标志以及许多发现的个体预后生物标志物可以实现相当或更好的性能风险评分,尤其是对于年轻的ER +患者。这些发现的生物标记物有可能用于临床中,以识别较高复发风险并应接受更多治疗的淋巴结阴性(Node-)和雌激素受体阳性(ER +)患者的子集。积极地。我们还将讨论工业生物标志物发现中的良好做法。

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