首页> 美国卫生研究院文献>Oncotarget >Artificial neural network models for early diagnosis of hepatocellular carcinoma using serum levels of α-fetoprotein α-fetoprotein-L3 des-γ-carboxy prothrombin and Golgi protein 73
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Artificial neural network models for early diagnosis of hepatocellular carcinoma using serum levels of α-fetoprotein α-fetoprotein-L3 des-γ-carboxy prothrombin and Golgi protein 73

机译:利用血清甲胎蛋白甲胎蛋白-L3脱-γ-羧基凝血酶原和高尔基体蛋白的血清水平对肝细胞癌进行早期诊断的人工神经网络模型73

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摘要

More than 70% of hepatocellular carcinoma (HCC) cases develop as a consequence of liver cirrhosis (LC). Here we have evaluated the diagnostic potential of four serum biomarkers, and developed models for HCC diagnosis and differentiation from LC patients. Serum levels of α-fetoprotein (AFP), AFP-L3, des-γ-carboxy prothrombin (DCP), and Golgi protein 73 (GP73) were analyzed in 114 advanced HCC patients, 81 early stage HCC patients, and 152 LC patients. Multilayer perceptron (MLP) and radial basis function (RBF) neural networks were used to construct the diagnostic models. Using all stages, HCC diagnostic models had a higher sensitivity (>70%) than the individual serum biomarkers, whereas only early stage HCC diagnostic models had a higher specificity (>80%). The early stage HCC diagnostic models could not be used as HCC screening tools due to their low sensitivity (about 40%). These results suggest that a combination of the two models might be used as a screening tool to distinguish early stage HCC patients from LC patients, thus improving prevention and treatment of HCC.
机译:超过70%的肝细胞癌(HCC)病例是由肝硬化(LC)引起的。在这里,我们评估了四种血清生物标志物的诊断潜力,并开发了用于HCC诊断和与LC患者鉴别的模型。在114例晚期HCC患者,81例早期HCC患者和152例LC患者中分析了甲胎蛋白(AFP),AFP-L3,des-γ-羧基凝血酶原(DCP)和高尔基蛋白73(GP73)的血清水平。多层感知器(MLP)和径向基函数(RBF)神经网络用于构建诊断模型。在所有阶段中,HCC诊断模型的敏感性(> 70%)均高于单个血清生物标志物,而只有早期HCC诊断模型具有更高的特异性(> 80%)。早期HCC诊断模型由于灵敏度低(约40%)而不能用作HCC筛查工具。这些结果表明,两种模型的组合可以用作区分早期HCC患者和LC患者的筛查工具,从而改善HCC的预防和治疗。

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