Clinical significance of miRNA-1 and its potential target gene network in lung squamous cell carcinoma

被引:4
作者
Li, Xiaojiao [1 ]
Qin, Meijiao [2 ]
Huang, Jiacheng [2 ]
Ma, Jie [2 ]
Hu, Xiaohua [2 ]
机构
[1] Guangxi Med Univ, Affiliated Hosp 1, Dept Positron Emiss Tomog Computed Tomog, Nanning 530021, Guangxi Zhuang, Peoples R China
[2] Guangxi Med Univ, Affiliated Hosp 1, Dept Med Oncol, 6 Shuangyong Rd, Nanning 530021, Guangxi Zhuang, Peoples R China
关键词
microRNA-1-3p; lung squamous cell carcinoma; microRNA; bioinformatics; microarray; TUMOR-SUPPRESSOR P53; CANCER GENOME ATLAS; EXPRESSION PROFILES; DOWN-REGULATION; MESSENGER-RNA; MICRORNAS; DIAGNOSIS; MIGRATION; THERAPY; PROTEIN;
D O I
10.3892/mmr.2019.10171
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Previous studies demonstrated that miRNA-1 (miR-1) is downregulated in certain human cancer and serves a crucial role in the progression of cancer. However, there are only a few previous studies examining the association between miR-1 and lung squamous cell carcinoma (LUSC) and the regulatory mechanism of miR-1 in LUSC remains unclear. Therefore, the present study investigated the clinical significance and determined the potential molecular mechanism of miR-1 in LUSC. The expression of miR-1 and its clinical significance in LUSC was examined by conducting a meta-analysis of 12 studies using Stata 14, MetaDiSc1.4 and SPSS version 23. In addition, Gene Ontology and Kyoto Encyclopedia of Genes and Genomes pathway enrichment analyses were performed using the potential target genes of miR-1 gathered from Gene Expression Omnibus and ArrayExpress. Meta-analysis demonstrated that miR-1 was significantly downregulated in LUSC [standardized mean difference: -1.44; 95% confidence interval (CI): -2.08, -0.81], and the area under the curve was 0.9096 (Q*=0.8416) with sensitivity of 0.71 (95% CI: 0.66, 0.76) and specificity of 0.88 (95% CI: 0.86, 0.90). The pooled positive likelihood ratio and negative likelihood ratio were 4.93 (95% CI: 2.54, 9.55) and 0.24 (95% CI: 0.10, 0.54), respectively. Bioinformatics analysis demonstrated that miR-1 may be involved in the progression of LUSC via the cell cycle', p53 signaling pathway', Fanconi anemia pathway', homologous recombination', glycine, serine and threonine metabolism' and oocyte meiosis'. In summary, miR-1 was significantly downregulated in LUSC, suggesting a novel and promising non-invasive biomarker for diagnosing LUSC, and miR-1 was involved in LUSC progression via a number of significant pathways.
引用
收藏
页码:5063 / 5078
页数:16
相关论文
共 67 条
[41]   MicroRNA Classifiers for Predicting Prognosis of Squamous Cell Lung Cancer [J].
Raponi, Mitch ;
Dossey, Lesley ;
Jatkoe, Tim ;
Wu, Xiaoying ;
Chen, Guoan ;
Fan, Hongtao ;
Beer, David G. .
CANCER RESEARCH, 2009, 69 (14) :5776-5783
[42]   MiR-21 is an EGFR-regulated anti-apoptotic factor in lung cancer in never-smokers [J].
Seike, Masahiro ;
Goto, Akiteru ;
Okano, Tetsuya ;
Bowman, Elise D. ;
Schetter, Aaron J. ;
Horikawa, Izumi ;
Mathe, Ewy A. ;
Jen, Jin ;
Yang, Ping ;
Sugimura, Haruhiko ;
Gemma, Akihiko ;
Kudoh, Shoji ;
Croce, Carlo M. ;
Harris, Curtis C. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2009, 106 (29) :12085-12090
[43]   Cytoscape: A software environment for integrated models of biomolecular interaction networks [J].
Shannon, P ;
Markiel, A ;
Ozier, O ;
Baliga, NS ;
Wang, JT ;
Ramage, D ;
Amin, N ;
Schwikowski, B ;
Ideker, T .
GENOME RESEARCH, 2003, 13 (11) :2498-2504
[44]   Emerging roles of microRNAs in pancreatic cancer diagnosis, therapy and prognosis [J].
Subramani, Ramadevi ;
Gangwani, Laxman ;
Nandy, Sushmita Bose ;
Arumugam, Arunkumar ;
Chattopadhyay, Munmun ;
Lakshmanaswamy, Rajkumar .
INTERNATIONAL JOURNAL OF ONCOLOGY, 2015, 47 (04) :1203-1210
[45]   DNA damage responsive microRNAs misexpressed in human cancer modulate therapy sensitivity [J].
van Jaarsveld, Marijn T. M. ;
Wouters, Maikel D. ;
Boersma, Antonius W. M. ;
Smid, Marcel ;
van Ijcken, Wilfred F. J. ;
Mathijssen, Ron H. J. ;
Hoeijmakers, Jan H. J. ;
Martens, John W. M. ;
van Laere, Steven ;
Wiemer, Erik A. C. ;
Pothof, Joris .
MOLECULAR ONCOLOGY, 2014, 8 (03) :458-468
[46]   Molecular mechanisms and clinical applications of miR-22 in regulating malignant progression in human cancer [J].
Wang, Jingyu ;
Li, Yuan ;
Ding, Meiman ;
Zhang, Honghe ;
Xu, Xiaoming ;
Tang, Jinlong .
INTERNATIONAL JOURNAL OF ONCOLOGY, 2017, 50 (02) :345-355
[47]   Analysis of Long Non-Coding RNA Expression Profiles in Non-Small Cell Lung Cancer [J].
Wang, Li ;
Chen, Zhenhong ;
An, Li ;
Wang, Yajuan ;
Zhang, Zhijian ;
Guo, Yinghua ;
Liu, Changting .
CELLULAR PHYSIOLOGY AND BIOCHEMISTRY, 2016, 38 (06) :2389-2400
[48]   Early Detection of Lung Cancer in Serum by a Panel of MicroRNA Biomarkers [J].
Wang, Ping ;
Yang, Dawei ;
Zhang, Honglian ;
Wei, Xuyu ;
Ma, Tianle ;
Cheng, Zule ;
Hong, Qunying ;
Hu, Jie ;
Zhuo, Hanjing ;
Song, Yuanlin ;
Jia, Chunping ;
Jing, Fengxiang ;
Jin, Qinghui ;
Bai, Chunxue ;
Mao, Hongju ;
Zhao, Jianlong .
CLINICAL LUNG CANCER, 2015, 16 (04) :313-+
[49]   Atomic and electronic basis for the serrations of refractory high-entropy alloys [J].
Wang, William Yi ;
Shang, Shun Li ;
Wang, Yi ;
Han, Fengbo ;
Darling, Kristopher A. ;
Wu, Yidong ;
Xie, Xie ;
Senkov, Oleg N. ;
Li, Jinshan ;
Hui, Xi Dong ;
Dahmen, Karin A. ;
Liaw, Peter K. ;
Kecskes, Laszlo J. ;
Liu, Zi-Kui .
NPJ COMPUTATIONAL MATERIALS, 2017, 3
[50]   miR-124-3p functions as a tumor suppressor in breast cancer by targeting CBL [J].
Wang, Yanbo ;
Chen, Luxiao ;
Wu, Zhenyu ;
Wang, Minghai ;
Jin, Fangfang ;
Wang, Nan ;
Hu, Xiuting ;
Liu, Zhengya ;
Zhang, Chen-Yu ;
Zen, Ke ;
Chen, Jiangning ;
Liang, Hongwei ;
Zhang, Yujing ;
Chen, Xi .
BMC CANCER, 2016, 16