Pivotal role for S-nitrosylation of DNA methyltransferase 3B in epigenetic regulation of tumorigenesis

Author:

Okuda Kosaku,Nakahara KengoORCID,Ito AkihiroORCID,Iijima Yuta,Nomura Ryosuke,Kumar Ashutosh,Fujikawa Kana,Adachi Kazuya,Shimada Yuki,Fujio Satoshi,Yamamoto Reina,Takasugi NobumasaORCID,Onuma Kunishige,Osaki Mitsuhiko,Okada Futoshi,Ukegawa Taichi,Takeuchi Yasuo,Yasui NorihisaORCID,Yamashita AtsukoORCID,Marusawa Hiroyuki,Matsushita Yosuke,Katagiri Toyomasa,Shibata TakahiroORCID,Uchida Koji,Niu Sheng-Yong,Lang Nhi B.ORCID,Nakamura TomohiroORCID,Zhang Kam Y. J.ORCID,Lipton Stuart A.ORCID,Uehara TakashiORCID

Abstract

AbstractDNA methyltransferases (DNMTs) catalyze methylation at the C5 position of cytosine with S-adenosyl-l-methionine. Methylation regulates gene expression, serving a variety of physiological and pathophysiological roles. The chemical mechanisms regulating DNMT enzymatic activity, however, are not fully elucidated. Here, we show that protein S-nitrosylation of a cysteine residue in DNMT3B attenuates DNMT3B enzymatic activity and consequent aberrant upregulation of gene expression. These genes include Cyclin D2 (Ccnd2), which is required for neoplastic cell proliferation in some tumor types. In cell-based and in vivo cancer models, only DNMT3B enzymatic activity, and not DNMT1 or DNMT3A, affects Ccnd2 expression. Using structure-based virtual screening, we discovered chemical compounds that specifically inhibit S-nitrosylation without directly affecting DNMT3B enzymatic activity. The lead compound, designated DBIC, inhibits S-nitrosylation of DNMT3B at low concentrations (IC50 ≤ 100 nM). Treatment with DBIC prevents nitric oxide (NO)-induced conversion of human colonic adenoma to adenocarcinoma in vitro. Additionally, in vivo treatment with DBIC strongly attenuates tumor development in a mouse model of carcinogenesis triggered by inflammation-induced generation of NO. Our results demonstrate that de novo DNA methylation mediated by DNMT3B is regulated by NO, and DBIC protects against tumor formation by preventing aberrant S-nitrosylation of DNMT3B.

Funder

Ministry of Education, Culture, Sports, Science and Technology

Japan Agency for Medical Research and Development

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary

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