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A group of long noncoding RNAs identified by data mining can predict the prognosis of lung adenocarcinoma

机译:通过数据挖掘确定的一组长的非编码RNA可以预测肺腺癌的预后

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摘要

Long noncoding RNAs (lncRNA) are reported to be potential cancer biomarkers. This study aims to find new lncRNA biomarker relevant to lung adenocarcinoma. Gene expression profile and clinical data of lung adenocarcinoma and lung squamous cell carcinoma patients were downloaded from the UCSC Xena database. These data were analyzed to identify potential lncRNA prognostic biomarkers, and the candidate lncRNAs were analyzed and verified with association analysis, meta‐analysis, survival analysis, gene ontology analysis, gene set enrichment analysis, and other statistical methods. A group of 5 lncRNAs was identified from the 1965 differentially expressed (fold‐change >2) genes. Four of these 5 lncRNAs were expressed at a lower level in lung adenocarcinoma tissues and the other one at a higher level (P < .0001). A risk score model was constructed using a linear combination of the expression levels of these lncRNAs. High‐risk patients showed poorer overall survival (hazard ratio [HR] = 2.14; 95% confidence interval [CI], 1.67‐3.06, P < .0001), disease‐free survival (HR = 1.84; 95% CI, 1.26‐2.35, P = .0007), and recurrence‐free survival (HR = 1.51; 95% CI, 1.02‐2.40, P = .04). The 5‐fold cross‐validation and subsequent meta‐analysis further verified that patients in the low‐risk group had better survival (95% CI, 0.74‐1.79, Z = 4.72, P < .00001). Furthermore, both univariate and multivariate Cox regression analyses revealed that the prognostic value of these 5 lncRNAs was independent of other clinical prognostic factors. Further analysis indicated that these 5 lnc style="fixed-case">RNAs might be associated with tumor metastasis. Taken together, our study suggests new prognostic lnc style="fixed-case">RNA biomarkers for lung adenocarcinoma.
机译:据报道,长的非编码RNA(lncRNA)是潜在的癌症生物标志物。这项研究旨在寻找与肺腺癌相关的新的lncRNA生物标志物。肺腺癌和肺鳞癌患者的基因表达谱和临床数据可从UCSC Xena数据库下载。分析这些数据以鉴定潜在的lncRNA预后生物标志物,并通过关联分析,荟萃分析,生存分析,基因本体分析,基因组富集分析和其他统计方法对候选lncRNA进行分析和验证。从1965年差异表达(倍数变化> 2)基因中鉴定出5个lncRNA。这5种lncRNA中有4种在肺腺癌组织中的表达水平较低,而另一种在更高水平的表达(P <.0001)。使用这些lncRNA的表达水平的线性组合来构建风险评分模型。高危患者的总生存期较差(危险比[HR] = 2.14; 95%置信区间[CI],1.67-3.06,P <.0001),无病生存期(HR = 1.84; 95%CI,1.26- 2.35,P = .0007)和无复发生存率(HR = 1.51; 95%CI,1.02-2.40,P = .04)。 5倍交叉验证和随后的荟萃分析进一步证实了低风险组患者的生存率更高(95%CI,0.74-1.79,Z = 4.72,P <.00001)。此外,单变量和多变量Cox回归分析均显示这5个lncRNA的预后价值与其他临床预后因素无关。进一步的分析表明,这5个lnc style =“ fixed-case”> RNA s可能与肿瘤转移有关。综上所述,我们的研究提出了新的预后性lnc style =“ fixed-case”> RNA 生物标志物用于肺腺癌。

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