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Bioinformatics identification of lncRNA biomarkers associated with the progression of esophageal squamous cell carcinoma

机译:与食管鳞状细胞癌进展相关的lncRNA生物标志物的生物信息学鉴定

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摘要

The poor outcome of patients with esophageal squamous cell carcinoma (ESCC) highlights the importance of the identification of novel effective prognostic biomarkers. Long non-coding RNAs (lncRNAs) serve regulatory roles in various types of cancer. The aim of the present study was to investigate the lncRNA expression profile in ESCC and to identify lncRNAs associated with the prognosis of ESCC by performing comprehensive bioinformatics analyses. The RNA-sequencing (Seq) expression dataset generated from ESCC samples was used as a training dataset. Additional RNA-Seq datasets relative to ESCC samples were downloaded from The Cancer Genome Atlas and used as a validation dataset. Data were screened using the limma package, and differentially expressed lncRNAs between early- and late-stage ESCC were identified. A random forest algorithm was used to select the optimal lncRNA biomarkers, which were then analyzed using the support vector machine (SVM) algorithm with R software. The identified lncRNA biomarkers were examined in the validation dataset by bidirectional hierarchical clustering and using an SVM classifier. Subsequently, univariate and multivariate Cox regression analyses were performed to analyze the potential ability lncRNAs to predict the survival rate of patients with ESCC. By examining the training group, 259 deregulated lncRNAs between early- and advanced-stage ESCC were identified. Further bioinformatics analyses identified a nine-lncRNA signature, including , , RP11-51M24, RP11-317N8, RP11-834C11, RP11-69C17, LINC00471, LINC01193 and RP1-124C. This nine-lncRNA signature was used to predict the tumor stage and patient survival rate with high reliability and accuracy in the training and validation datasets. Furthermore, these nine lncRNA biomarkers were primarily involved in regulating the cell cycle and DNA replication, and these processes were previously identified to be associated with the progression of ESCC. The identified nine-lncRNA signature was identified to be associated with the tumor stage, and could be used as predictor of the survival rate of patients with ESCC.
机译:食管鳞状细胞癌(ESCC)患者预后较差,突出了鉴定新型有效预后生物标志物的重要性。长的非编码RNA(lncRNA)在各种类型的癌症中起调节作用。本研究的目的是通过进行全面的生物信息学分析来调查ESCC中lncRNA的表达谱,并鉴定与ESCC预后相关的lncRNA。从ESCC样本生成的RNA序列(Seq)表达数据集用作训练数据集。相对于ESCC样品的其他RNA-Seq数据集可从The Cancer Genome Atlas下载,并用作验证数据集。使用limma软件包筛选数据,并鉴定出早期和晚期ESCC之间差异表达的lncRNA。使用随机森林算法选择最佳的lncRNA生物标志物,然后使用支持向量机(SVM)算法和R软件对其进行分析。通过双向层次聚类和使用SVM分类器,在验证数据集中检查已鉴定的lncRNA生物标志物。随后,进行单因素和多因素Cox回归分析以分析lncRNA预测ESCC患者生存率的潜在能力。通过检查训练组,鉴定出了早期和晚期ESCC之间的259个失调的lncRNA。进一步的生物信息学分析确定了九个lncRNA标记,包括RP11-51M24,RP11-317N8,RP11-834C11,RP11-69C17,LINC00471,LINC01193和RP1-124C。在训练和验证数据集中,该9-lncRNA签名用于以高可靠性和准确性预测肿瘤阶段和患者存活率。此外,这九种lncRNA生物标志物主要参与调节细胞周期和DNA复制,并且先前已确定这些过程与ESCC的进展有关。鉴定出的九个lncRNA标记与肿瘤分期有关,可以用作ESCC患者生存率的预测指标。

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