DNA甲基化
发起人
生物
DNA去甲基化
癌症研究
缺氧(环境)
甲基化
分子生物学
基因表达
转录因子
基因
化学
生物化学
氧气
有机化学
作者
Bernard Thienpont,Jessica Steinbacher,Hui Zhao,Flora D’Anna,Anna Kuchnio,Athanasios Ploumakis,Bart Ghesquière,Laurien Van Dyck,Bram Boeckx,Luc Schoonjans,Els Hermans,Frédéric Amant,Vessela N. Kristensen,Kian Peng Koh,Massimiliano Mazzone,Mathew L. Coleman,Thomas Carell,Peter Carmeliet,Diether Lambrechts
出处
期刊:Nature
[Nature Portfolio]
日期:2016-08-16
卷期号:537 (7618): 63-68
被引量:651
摘要
Hypermethylation of the promoters of tumour suppressor genes represses transcription of these genes, conferring growth advantages to cancer cells. How these changes arise is poorly understood. Here we show that the activity of oxygen-dependent ten-eleven translocation (TET) enzymes is reduced by tumour hypoxia in human and mouse cells. TET enzymes catalyse DNA demethylation through 5-methylcytosine oxidation. This reduction in activity occurs independently of hypoxia-associated alterations in TET expression, proliferation, metabolism, hypoxia-inducible factor activity or reactive oxygen species, and depends directly on oxygen shortage. Hypoxia-induced loss of TET activity increases hypermethylation at gene promoters in vitro. In patients, tumour suppressor gene promoters are markedly more methylated in hypoxic tumour tissue, independent of proliferation, stromal cell infiltration and tumour characteristics. Our data suggest that up to half of hypermethylation events are due to hypoxia, with these events conferring a selective advantage. Accordingly, increased hypoxia in mouse breast tumours increases hypermethylation, while restoration of tumour oxygenation abrogates this effect. Tumour hypoxia therefore acts as a novel regulator of DNA methylation.
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