Hypermethylation of the RASSF1A gene promoter as the tumor DNA marker for nasopharyngeal carcinoma

1. Sham, JS, Wei, WI, Zong, YS, et al. Detection of subclinical nasopharyngeal carcinoma by fibreoptic endoscopy and multiple biopsy. Lancet 1990; 335: 371–374.
Google Scholar | Crossref | Medline | ISI2. Chang, CM, Yu, KJ, Mbulaiteye, SM, et al. The extent of genetic diversity of Epstein-Barr virus and its geographic and disease patterns: a need for reappraisal. Virus Res 2009; 143: 209–221.
Google Scholar | Crossref | Medline | ISI3. Cao, SM, Simons, MJ, Qian, CN. The prevalence and prevention of nasopharyngeal carcinoma in China. Chin J Cancer 2011; 30: 114–119.
Google Scholar | Crossref | Medline4. Mahdavifar, N, Ghoncheh, M, Mohammadian-Hafshejani, A, et al. Epidemiology and inequality in the incidence and mortality of nasopharynx cancer in Asia. Osong Public Health Res Perspect 2016; 7: 360–372.
Google Scholar | Crossref | Medline5. Lao, TD, Nguyen, TV, Nguyen, DH, et al. miR-141 is up-regulated in biopsies from Vietnamese patients with nasopharyngeal carcinoma. Braz Oral Res 2018; 32: e126.
Google Scholar | Crossref | Medline6. Lao, TD, Nguyen, DH, Le, THA. Study of mir-141 and its potential targeted mRNA PTEN expression in nasopharyngeal carcinoma: from in silico to initial experiment analysis. AJPRHC 2018; 10: 66–74.
Google Scholar | Crossref7. Lao, TD, Le, THA. Epidemiology, incidence and mortality of nasopharynx cancer in Southeast Asia: an update report. Adv Life Sci 2020; 7: 86–90.
Google Scholar8. Tabuchi, K, Nakayama, M, Nishimura, B, et al. Early detection of nasopharyngeal carcinoma. Int J Otolaryngol 2011; 2011: 638058–6.
Google Scholar | Crossref | Medline9. Li, M, Wang, C, Yu, B, et al. Diagnostic value of RASSF1A methylation for breast cancer: a meta-analysis. Biosci Rep 2019; 39: BSR20190923.
Google Scholar | Crossref | Medline10. Tao, Q, Chan, AT. Nasopharyngeal carcinoma: molecular pathogenesis and therapeutic developments. Expert Rev Mol Med 2007; 9: 1–24.
Google Scholar | Crossref | Medline11. Tsao, SW, Yip, YL, Tsang, CM, et al. Etiological factors of nasopharyngeal carcinoma. Oral Oncol 2014; 50: 330–338.
Google Scholar | Crossref | Medline | ISI12. Wu, K, Xu, XN, Chen, Y, et al. RASSF1A Gene methylation is associated with nasopharyngeal carcinoma risk in Chinese. Asian Pac J Cancer Prev 2015; 16: 2283–2287.
Google Scholar | Crossref | Medline13. Wang, LH, Wu, CF, Rajasekaran, N, et al. Loss of tumor suppressor gene function in human cancer: an overview. Cell Physiol Biochem 2018; 51: 2647–2693.
Google Scholar | Crossref | Medline14. Locke, WJ, Guanzon, D, Ma, C, et al. DNA Methylation cancer biomarkers: translation to the clinic. Front Genet 2019; 10: 1150.
Google Scholar | Crossref | Medline15. Chan, SL, Chu, S, Mak, C, et al. Analysis of plasma Epstein-Barr virus DNA to screen for nasopharyngeal cancer. N Engl J Med 2017; 377: 513–522.
Google Scholar | Crossref | Medline16. Zinatizadeh, MR, Momeni, SA, Zarandi, PK, et al. The role and function of Ras-association domain family in cancer: a review. Genes Dis 2019; 6: 378–384.
Google Scholar | Crossref | Medline17. García-Gutiérrez, L, McKenna, S, Kolch, W, et al. RASSF1A Tumour suppressor: target the network for effective cancer therapy. Cancers (Basel) 2020; 12: 29.
Google Scholar | Crossref18. Malpeli, G, Innamorati, G, Decimo, I, et al. Methylation dynamics of RASSF1A and Its impact on cancer. Cancers (Basel) 2019; 11: 59.
Google Scholar | Crossref19. Donninger, H, Vos, MD, Clark, GJ. The RASSF1A tumor suppressor. J Cell Sci 2007; 120: 3163–3172,
Google Scholar | Crossref | Medline | ISI20. Donninger, H, Clark, J, Rinaldo, F, et al. The RASSF1A tumor suppressor regulates XPA-mediated DNA repair. Mol Cell Biol 2015; 35: 277–287.
Google Scholar | Crossref | Medline21. Challouf, S, Ziadi, S, Zaghdoudi, R, et al. Patterns of aberrant DNA hypermethylation in nasopharyngeal carcinoma in Tunisian patients. Clin Chim Acta 2012; 413: 795–802.
Google Scholar | Crossref | Medline22. Tian, F, Yip, SP, Kwong, DLW, et al. Promoter hypermethylation of tumor suppressor genes in serum as potential biomarker for the diagnosis of nasopharyngeal carcinoma. Cancer Epidemiol 2013; 37: 708–713.
Google Scholar | Crossref | Medline23. Moher, D, Liberati, A, Tetzlaff, J, et al. Preferred reporting items for systematic reviews and meta-analyses: the PRISMA statement. PLoS Med 2009; 6: e1000097.
Google Scholar | Crossref | Medline | ISI24. Higgins, JP, Thompson, SG. Quantifying heterogeneity in a meta-analysis. Stat Med 2002; 21: 1539–1558.
Google Scholar | Crossref | Medline | ISI25. DerSimonian, R . Meta-analysis in the design and monitoring of clinical trials. Stat Med 1996; 15: 1237–1248.
Google Scholar | Crossref | Medline | ISI26. Higgins, JP, Thompson, SG, Deeks, JJ, et al. Measuring inconsistency in meta-analyses. Br Med J 2003; 327: 557–560.
Google Scholar | Crossref | Medline27. Begg, CB, Mazumdar, M. Operating characteristics of a rank correlation test for publication bias. Biometrics 1994; 50: 1088–1101.
Google Scholar | Crossref | Medline | ISI28. Egger, M, Davey, SG, Schneider, M, et al. Bias in meta-analysis detected by a simple, graphical test Br Med J 1997; 315: 629–634.
Google Scholar | Crossref | Medline29. Chow, LS, Lo, KW, Kwong, J, et al. RASSF1A Is a target tumor suppressor from 3p21.3 in nasopharyngeal carcinoma. Int J Cancer 2004; 109: 839–847.
Google Scholar | Crossref | Medline30. Chang, HS, Chan, A, Kwong, DLW, et al. Evaluation Of hypermethylated tumor suppressor genes As tumor markers In mouth And throat rinsing fluid, nasopharyngeal swab And peripheral blood Of nasopharygeal carcinoma patient. Int J Cancer 2003; 105: 851–855.
Google Scholar | Crossref | Medline31. Kwong, J, Lo, KW, To, KF, et al. Promoter hypermethylation of multiple genes in nasopharyngeal carcinoma. Clin Cancer Res 2002; 8: 131–837.
Google Scholar | Medline32. Wong, TS, Kwong, DLW, Sham, JST, et al. Quantitative plasma hypermethylated DNA markers of undifferentiated nasopharyngeal carcinoma. Clin Cancer Res 2004; 10: 2401–2406.
Google Scholar | Crossref | Medline | ISI33. Zhou, L, Jiang, W, Ren, C, et al. Frequent hypermethylation of RASSF1A and TSLC1, and high viral load of Epstein-Barr virus DNA in nasopharyngeal carcinoma and matched tumor-adjacent tissues. Neoplasia 2005; 7: 809–815.
Google Scholar | Crossref | Medline34. Wang, T, Liu, H, Chen, Y, et al. Methylation associated inactivation of RASSF1A and its synergistic effect with activated K-Ras in nasopharyngeal carcinoma. J Exp Clin Cancer Res 2009; 28: 160.
Google Scholar | Crossref | Medline35. Hutajulu, SH, Indrasari, SR, Indrawati, LP, et al. Epigenetic markers for early detection of nasopharyngeal carcinoma in a high risk population. Mol Cancer 2011; 10: 48.
Google Scholar | Crossref | Medline36. Fendri, A, Masmoudi, A, Khabir, A, et al. Inactivation of RASSF1A, RARβ2 and DAP-kinase by promoter methylation correlates with lymph node metastasis in nasopharyngeal carcinoma. Cancer Biol Ther 2009; 8: 444–451.
Google Scholar | Crossref | Medline | ISI37. Tong, JHM, Tsang, RKY, Lo, KW, et al. Quantitative Epstein-Barr virus DNA analysis and detection of gene promoter hypermethylation in nasopharyngeal (NP) brushing samples from patients with NP carcinoma. Clin Cancer Res 2002; 8: 2612–2619.
Google Scholar | Medline | ISI38. Zhang, Z, Sun, D, Hutajulu, SH, et al. Development of a Non-invasive method, Multiplex methylation specific PCR (MMSP), for early diagnosis of nasopharyngeal carcinoma. PLoS ONE 2012; 7: e45908.
Google Scholar | Crossref | Medline39. Wong, TS, Tang, KC, Kwong, DLW, et al. Differential gene methylation in undifferentiated nasopharyngeal carcinoma. Int J Onco 2003; 22: 869–874.
Google Scholar | Medline40. Qiu, GH, Tan, LKS, Loh, KS, et al. The candidate tumor suppressor gene BLU, located at the commonly deleted region 3p21.3, is an E2F-regulated, stress-responsive gene and inactivated by both epigenetic and genetic mechanisms in nasopharyngeal carcinoma. Oncogene 2004; 23: 4793–4806.
Google Scholar | Crossref | Medline41. Lo, KW, Kwong, J, Hui, ABY, et al. High frequency of promoter hypermethylation of RASSF1A in nasopharyngeal carcinoma. Cancer Res 2001; 61: 3877–3881.
Google Scholar | Medline42. Yang, X, Dai, W, Kwong, DLW, et al. Epigenetic markers for Non-invasive early detection of nasopharyngeal carcinoma by methylation-sensitive high resolution melting. Int J Cancer 2015; 136: 1–29.
Google Scholar | Crossref | Medline43. Thieu, HH, Lao, DT, Le, HAT. Characterization of promoter hypermethylation of tumor suppressor gene RASSF1A and its association with the risk of nasopharyngeal carcinoma. Pharmacophore 2020; 11: 56–62.
Google Scholar44. Rountree, MR, Bachman, KE, Herman, JG, et al. DNA Methylation, chromatin inheritance, and cancer. Oncogene 2001; 20: 3156–3165.
Google Scholar | Crossref | Medline | ISI45. Xiong, W, Zeng, ZY, Xia, JH. A susceptibility locus at chromosome 3p21 linked to familial nasopharyngeal carcinoma. Cancer Res 2004; 64: 1972–1974.
Google Scholar | Crossref | Medline46. Hui, AB, Lo, KW, Leung, SF, et al. Detection of recurrent chromosomal gains and losses in primary nasopharyngeal carcinoma by comparative genomic hybridisation. Int J Cancer 1999; 82: 498–503.
Google Scholar | Crossref | Medline47. Zhang, J, Shen, Z, Liu, H, et al. Diagnostic potential of methylated DAPK in brushing samples of nasopharyngeal carcinoma. Cancer Manag Res 2018; 10: 2953–2964.
Google Scholar | Crossref | Medline48. Huang, Z, Bassil, CF, Murphy, SK. Methylation-specific PCR. Methods Mol Biol 2013; 1049: 75–82.
Google Scholar | Crossref | Medline49. Agodi, A, Barchitta, M, Quattrocchi, A, et al. DAPK1 Promoter methylation and cervical cancer risk: a systematic review and a meta-analysis. PLoS One 2015; 10: e0135078.
Google Scholar | Crossref | Medline50. Hussmann, D, Hansen, LL. Methylation-sensitive high resolution melting (MS-HRM). In: Tost, J (ed) DNA methylation protocols. Methods in molecular biology. New York, NY: Humana Press, 2018, pp.1708.
Google Scholar | Crossref

留言 (0)

沒有登入
gif