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Gene expression signature‐based prognostic risk score in patients with glioblastoma

机译:基因表达患者胶质母细胞瘤患者的预后风险评分

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摘要

The present study aimed to identify genes associated with patient survival to improve our understanding of the underlying biology of gliomas. We investigated whether the expression of genes selected using random survival forests models could be used to define glioma subgroups more objectively than standard pathology. The RNA from 32 non‐treated grade 4 gliomas were analyzed using the GeneChip Human Genome U133 Plus 2.0 Expression array (which contains approximately 47 000 genes). Twenty‐five genes whose expressions were strongly and consistently related to patient survival were identified. The prognosis prediction score of these genes was most significant among several variables and survival analyses. The prognosis prediction score of three genes and age classifiers also revealed a strong prognostic value among grade 4 gliomas. These results were validated in an independent samples set (n = 488). Our method was effective for objectively classifying grade 4 gliomas and was a more accurate prognosis predictor than histological grading.
机译:本研究旨在鉴定与患者生存相关的基因,以改善我们对胶质瘤的潜在生物学的理解。我们研究了使用随机生存森林模型选择的基因的表达是否可用于比标准病理更客观地定义胶质瘤亚组。使用GeneChip人类基因组U133加2.0表达阵列(含有约47 000基因)分析来自32级未处理4级胶质瘤的RNA。鉴定了表情强烈且与患者存活相关的二十五个基因。这些基因的预后预测得分在几个变量和生存分析中最显着。三种基因和年龄分类器的预后预测得分也揭示了4级胶质瘤之间的预后价值。这些结果在独立的样本集中验证(n = 488)。我们的方法对于客观分类4级胶质瘤是有效的,并且是比组织学分级更准确的预测预测。

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