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CpG甲基化使人类p53肿瘤抑制基因启动子的转录活性失活。

CpG methylation inactivates the transcriptional activity of the promoter of the human p53 tumor suppressor gene.

作者信息

Schroeder M, Mass M J

机构信息

Toxicology Program, University of North Carolina at Chapel Hill, 27599, USA.

出版信息

Biochem Biophys Res Commun. 1997 Jun 18;235(2):403-6. doi: 10.1006/bbrc.1997.6796.

Abstract

Alterations of the methylation patterns of DNA are common in cancer cells and could conceivably comprise a subset of causal events in the carcinogenesis process. Although it has previously been shown that methylation of CpG islands in the 5'-control regions of tumor suppressor genes such as p16, Von Hippel-Lindau (VHL) syndrome gene, and the retinoblastoma (RB) gene can suppress expression and function of these gene products, the elements that control the expression of the p53 gene have not been examined in detail. In this study we examined the effect of CpG methylation in a region of the p53 promoter containing major transcription start sites. A region of the p53 promoter (from -199 to +142) containing 15 CpG dinucleotides was placed in a pCAT reporter plasmid and reporter activity was assessed in host CV-1 cells. We show for the first time that transcriptional activation of the p53 tumor suppressor gene, as assessed by a reporter plasmid construct, can be down-regulated by cytosine methylation in the basal promoter region. We believe these data suggest a role for methylation of CpG sequences in the regulation of transcription of p53. This implies that the tumor suppressor gene p53 could, therefore, contribute to carcinogenesis by inactivation via methylation of a key element in cell cycle control.

摘要

DNA甲基化模式的改变在癌细胞中很常见,并且可以想象在致癌过程中可能是一系列因果事件的一部分。尽管先前已经表明,肿瘤抑制基因如p16、冯·希佩尔-林道(VHL)综合征基因和视网膜母细胞瘤(RB)基因的5'调控区中CpG岛的甲基化可抑制这些基因产物的表达和功能,但尚未详细研究控制p53基因表达的元件。在本研究中,我们研究了p53启动子中包含主要转录起始位点的区域内CpG甲基化的作用。将包含15个CpG二核苷酸的p53启动子区域(从-199至+142)置于pCAT报告质粒中,并在宿主CV-1细胞中评估报告基因活性。我们首次表明,通过报告质粒构建体评估,p53肿瘤抑制基因的转录激活可被基础启动子区域中的胞嘧啶甲基化下调。我们认为这些数据表明CpG序列甲基化在p53转录调控中发挥作用。这意味着肿瘤抑制基因p53可能通过细胞周期控制关键元件的甲基化失活而导致致癌作用。

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