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Bioorganic & medicinal chemistry letters. 2010 Jan 1;20(1):260-5. doi: 10.1016/j.bmcl.2009.10.124 Q22.22025

DNA methylation by dimethyl sulfoxide and methionine sulfoxide triggered by hydroxyl radical and implications for epigenetic modifications

由羟基自由基触发的二甲亚砜和蛋氨酸亚砜介导的DNA甲基化及对表观遗传修饰的意义 翻译改进

Kazuaki Kawai  1, Yun-Shan Li, Ming-Fen Song, Hiroshi Kasai

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  • 1 Department of Environmental Oncology, Institute of Industrial Ecological Sciences, University of Occupational and Environmental Health, 1-1, Iseigaoka, Yahatanishi-ku, Kitakyushu 807-8555, Japan.
  • DOI: 10.1016/j.bmcl.2009.10.124 PMID: 19914833

    摘要 Ai翻译

    In this Letter, we demonstrate the formation of m(5)dC from dC or in DNA by dimethylsulfoxide (DMSO) and methionine sulfoxide (MetO), under physiological conditions in the presence of the Fenton reagent in vitro. DMSO reportedly affects the cellular epigenetic profile, and enhances the metastatic potential of cultured epithelial cells. The methionine sulfoxide reductase (Msr) gene was suggested to be a metastatis suppressor gene, and the accumulation of MetO in proteins may induce metastatic cancer. Our findings are compatible with these biological data and support the hypothesis that chemical cytosine methylation via methyl radicals is one of the mechanisms of DNA hypermethylation during carcinogenesis. In addition to m(5)dC, the formation of 8-methyldeoxyguanosine (m(8)dG) was also detected in DNA under the same reaction conditions. The m(8)dG level in human DNA may be a useful indicator of DNA methylation by radical mechanisms.

    Keywords:DNA methylation; Hydroxyl Radical; Epigenetic Modifications

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    期刊名:Bioorganic & medicinal chemistry letters

    缩写:BIOORG MED CHEM LETT

    ISSN:0960-894X

    e-ISSN:1464-3405

    IF/分区:2.2/Q2

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    DNA methylation by dimethyl sulfoxide and methionine sulfoxide triggered by hydroxyl radical and implications for epigenetic modifications