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Serum micro RNA RNA profiles as diagnostic biomarkers for HBV HBV ‐positive hepatocellular carcinoma

机译:血清Micro RNA RNA型材作为HBV HBV阳性肝细胞癌的诊断生物标志物

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Abstract Background & Aims The discovery of effective and reliable biomarkers to detect hepatitis B virus ( HBV )‐positive hepatocellular carcinoma ( HCC ) at an early stage may improve the survival of HCC . The aim of this study was to establish serum micro RNA (mi RNA ) profiles as diagnostic biomarkers for HBV ‐positive HCC . Methods We used deep sequencing to screen serum mi RNA s in a discovery cohort (n=100). Quantitative polymerase chain reaction ( qPCR ) assays were then applied to evaluate the expression of selected mi RNA s. A diagnostic 2‐mi RNA panel was established by a logistic regression model using a training cohort (n=182). The predicted probability of being detected as HCC was used to construct the receiver operating characteristic ( ROC ) curve. Area under the ROC curve ( AUC ) was used to assess the diagnostic performance of the selected mi RNA panel. Results The predicted probability of being detected as HCC by the 2‐mi RNA panel was calculated by: logit P=?2.988?+?1.299?×?miR‐27b‐3p?+?1.245?×?miR‐192‐5p. These results were further confirmed in a validation cohort (n=246).The mi RNA panel provided a high diagnostic accuracy of HCC ( AUC =0.842, P .0001 for training set; AUC =0.836, P .0001 for validation set respectively). In addition, the mi RNA panel showed better prediction of HCC diagnosis than did alpha‐foetoprotein ( AFP ). The mi RNA panel also differentiated HCC from healthy ( AUC =0.823, P .0001), and cirrhosis patients ( AUC =0.859, P .0001) respectively. Conclusions Differentially expressed serum mi RNA s may have considerable clinical value in HCC diagnosis, and be particularly helpful for AFP ‐negative HCC .
机译:抽象背景&旨在发现有效且可靠的生物标志物,以检测早期阶段的乙型肝炎病毒(HBV)阳性肝细胞癌(HCC)可以改善HCC的存活。该研究的目的是建立血清微RNA(MI RNA)曲线作为HBV阳性HCC的诊断生物标志物。方法我们在发现队列中使用深度测序筛选血清MI RNA S(n = 100)。然后施用定量聚合酶链反应(QPCR)测定以评估所选Mi RNA的表达。使用培训队列(n = 182),由逻辑回归模型建立诊断2-mi RNA面板。被检测为HCC被检测的预测概率用于构建接收器操作特性(ROC)曲线。 ROC曲线(AUC)下的区域用于评估所选MI RNA面板的诊断性能。结果通过:Logit P = 2.2.988?+?1.299?×miR-27b-3p?+α1.1.245?××miR-192-5p。这些结果在验证队列(n = 246)中进一步证实。MI RNA面板提供了HCC的高诊断精度(AUC = 0.842,P& .0001进行训练集; AUC = 0.836,P& .0001验证分别设置)。此外,MI RNA面板显示出比α-氟蛋白(AFP)更好地预测HCC诊断。 MI RNA面板也分别将HCC分化(AUC = 0.823,P& .0001)和肝硬化患者(AUC = 0.859,P& .0001)。结论差异表达的血清MI RNA S可能在HCC诊断中具有相当大的临床价值,并对AFP-Negative HCC特别有帮助。

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  • 来源
    《Liver international :》 |2017年第6期|共9页
  • 作者单位

    State Key Laboratory of Oncology in South ChinaSun Yat‐sen University Cancer CenterGuangzhou China;

    State Key Laboratory of Oncology in South ChinaSun Yat‐sen University Cancer CenterGuangzhou China;

    Department of paediatricsThird Affiliated Hospital of Sun Yat‐Sen UniversityGuangzhou China;

    State Key Laboratory of Oncology in South ChinaSun Yat‐sen University Cancer CenterGuangzhou China;

    State Key Laboratory of Oncology in South ChinaSun Yat‐sen University Cancer CenterGuangzhou China;

    State Key Laboratory of Oncology in South ChinaSun Yat‐sen University Cancer CenterGuangzhou China;

    State Key Laboratory of Oncology in South ChinaSun Yat‐sen University Cancer CenterGuangzhou China;

    State Key Laboratory of Oncology in South ChinaSun Yat‐sen University Cancer CenterGuangzhou China;

    State Key Laboratory of Oncology in South ChinaSun Yat‐sen University Cancer CenterGuangzhou China;

    State Key Laboratory of Oncology in South ChinaSun Yat‐sen University Cancer CenterGuangzhou China;

    State Key Laboratory of Oncology in South ChinaSun Yat‐sen University Cancer CenterGuangzhou China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 内科学;
  • 关键词

    biomarkers; diagnosis; hepatocellular carcinoma; serum micro RNA;

    机译:生物标志物;诊断;肝细胞癌;血清微RNA;

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