Multi-parameter gene expression profiling of peripheral blood for early detection of hepatocellular carcinoma

被引:0
|
作者
Hui Xie [1 ]
Yao-Qin Xue [2 ,3 ]
Peng Liu [4 ]
Peng-Jun Zhang [4 ]
Sheng-Tao Tian [1 ]
Zhao Yang [1 ]
Zhi Guo [2 ]
Hua-Ming Wang [1 ]
机构
[1] Department of Interventional Therapy,302 Hospital of People’s Liberation Army
[2] Department of Interventional Therapy,Shanxi Province Cancer Hospital,Shanxi Medical University
[3] Department of Interventional Therapy,Tianjin Medical University Cancer Institute and Hospital,National Clinical Research Center for Cancer,Key Laboratory of Cancer Prevention and Therapy,Tianjin,Tianjin’s Clinical Research Center for Cancer
[4] Key Laboratory of Carcinogenesis and Translational Research (Ministry of Education/Beijing),Interventional Therapy Department,Peking University Cancer Hospital and Institute
基金
中国国家自然科学基金; 国家重点研发计划;
关键词
Hepatocellular carcinoma; Peripheral blood; Early detection; Multi-parameter; Diagnostic value;
D O I
暂无
中图分类号
R735.7 [肝肿瘤];
学科分类号
100214 ;
摘要
AIM In our previous study, we have built a nine-gene(GPC3, HGF, ANXA1, FOS, SPAG9, HSPA1 B, CXCR4, PFN1, and CALR) expression detection system based on the Ge XP system. Based on peripheral blood and Ge XP, we aimed to analyze the results of genes expression by different multi-parameter analysis methods and build a diagnostic model to classify hepatocellular carcinoma(HCC) patients and healthy people.METHODS Logistic regression analysis, discriminant analysis, classification tree analysis, and artificial neural network were used for the multi-parameter gene expression analysis method. One hundred and three patients with early HCC and 54 age-matched healthy normal controls were used to build a diagnostic model. Fiftytwo patients with early HCC and 34 healthy people were used for validation. The area under the curve, sensitivity, and specificity were used as diagnostic indicators.RESULTS Artificial neural network of the total nine genes had the best diagnostic value, and the AUC, sensitivity, and specificity were 0.943, 98%, and 85%, respectively. At last, 52 HCC patients and 34 healthy normal controls were used for validation. The sensitivity and specificity were 96% and 86%, respectively.CONCLUSION Multi-parameter analysis methods may increase the diagnostic value compared to single factor analysis and they may be a trend of the clinical diagnosis in the future.
引用
收藏
页码:371 / 378
页数:8
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