基因组不稳定性
生物
遗传学
不稳定性
细胞生物学
循环(图论)
DNA损伤
计算生物学
DNA
物理
数学
组合数学
机械
作者
Emanuele Panatta,Alessio Butera,Eleonora Mammarella,Consuelo Pitolli,Alessandro Mauriello,Marcel Leist,Richard A. Knight,Gerry Melino,Ivano Amelio
出处
期刊:Cell Reports
[Cell Press]
日期:2022-11-01
卷期号:41 (5): 111568-111568
被引量:28
标识
DOI:10.1016/j.celrep.2022.111568
摘要
Gene-environment interactions can perturb the epigenome, triggering network alterations that participate in cancer pathogenesis. Integrating epigenomics, transcriptomics, and metabolic analyses with functional perturbation, we show that the tumor suppressor p53 preserves genomic integrity by empowering adequate levels of the universal methyl donor S-adenosylmethionine (SAM). In p53-deficient cells, perturbation of DNA methylation promotes derepression of heterochromatin, massive loss of histone H3-lysine 9 methylation, and consequent upregulation of satellite RNAs that triggers R-loop-associated replication stress and chromosomal aberrations. In p53-deficient cells, the inadequate SAM level underlies the inability to respond to perturbation because exogenous reintroduction of SAM represses satellite elements and restores the ability to cope with stress. Mechanistically, p53 transcriptionally controls genes involved in one-carbon metabolism, including Slc43a2, the methionine uptake transporter that is critical for SAM synthesis. Supported by clinical data, our findings shed light on the role of p53-mediated metabolism in preventing unscheduled R-loop-associated genomic instability.
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