DNA甲基化
癌变
表观遗传学
DNMT3B型
癌症研究
甲基化
DNMT1型
肺癌
生物
分子生物学
医学
癌症
基因表达
基因
肿瘤科
遗传学
作者
Wei Zhou,Dongdong Tian,Jun He,Yimei Wang,Lijun Zhang,Lan Cui,Jia Li,Li Zhang,Lizhong Li,Yulei Shu,Shouzhong Yu,Jun Zhao,Xiaoyan Yuan,Shuangqing Peng
出处
期刊:Oncotarget
[Impact Journals LLC]
日期:2016-03-02
卷期号:7 (15): 20691-20703
被引量:115
标识
DOI:10.18632/oncotarget.7842
摘要
Long-term exposure to fine particulate matter (PM2.5) has been reported to be closely associated with the increased lung cancer risk in populations, but the mechanisms underlying PM-associated carcinogenesis are not yet clear. Previous studies have indicated that aberrant epigenetic alterations, such as genome-wide DNA hypomethylation and gene-specific DNA hypermethylation contribute to lung carcinogenesis. And silence or mutation of P53 tumor suppressor gene is the most prevalent oncogenic driver in lung cancer development. To explore the effects of PM2.5 on global and P53 promoter methylation changes and the mechanisms involved, we exposed human bronchial epithelial cells (BEAS-2B) to low concentrations of PM2.5 for 10 days. Our results indicated that PM2.5-induced global DNA hypomethylation was accompanied by reduced DNMT1 expression. PM2.5 also induced hypermethylation of P53 promoter and inhibited its expression by increasing DNMT3B protein level. Furthermore, ROS-induced activation of Akt was involved in PM2.5-induced increase in DNMT3B. In conclusion, our results strongly suggest that repeated exposure to PM2.5 induces epigenetic silencing of P53 through ROS-Akt-DNMT3B pathway-mediated promoter hypermethylation, which not only provides a possible explanation for PM-induced lung cancer, but also may help to identify specific interventions to prevent PM-induced lung carcinogenesis.
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