Nitric oxide inhibits ten-eleven translocation DNA demethylases to regulate 5mC and 5hmC across the genome

Author:

Thomas Douglas1ORCID,Palczewski Marianne2ORCID,Kuschman Hannah2,Hoffman Brian3ORCID,Yang Hao4,Glynn Sharon5,Wilson David6,Kool Eric7,Montfort William8ORCID,Chang Jenny9,Petenkaya Aydolun10,Chronis Constantinos10,Cundari Thomas11,Sappa Sushma12,Islam Kabirul13,McVicar Daniel14ORCID,Fan Yu15ORCID,Chen Qingrong15,Meerzaman Daoud15,Sierk Michael15

Affiliation:

1. University of Illinois Chicago

2. University of Illinois Chicago, College of Pharmacy, Department of Pharmaceutical Sciences

3. Northwestern University

4. Weinberg College of Arts and Sciences, Northwestern University, Department of Chemistry

5. University of Galway, College of Medicine, Nursing and Health Sciences, School of Medicine, D. of Pathology

6. Stanford University

7. Stanford University, Department of Chemistry, School of Humanities and Sciences

8. University of Arizona, Department of Chemistry and Biochemistry

9. Houston Methodist, Department of Medicine and Oncology, Weill Cornell Medical College

10. University of Illinois Chicago, College of Medicine, Biochemistry and Molecular Genetics

11. University of North Texas, Department of Chemistry

12. University of Pittsburgh, Department of Chemistry

13. University of Pittsburgh

14. National Institutes of Health, National Cancer Institute, Center for Cancer Research

15. National Cancer Institute, Center for Biomedical Informatics and Information Technology

Abstract

Abstract DNA methylation at cytosine bases of eukaryotic DNA (5-methylcytosine, 5mC) is a heritable epigenetic mark that can regulate gene expression in health and disease. Enzymes that metabolize 5mC have been well-characterized, yet the discovery of endogenously produced signaling molecules that regulate DNA methyl-modifying machinery have not been described. Herein, we report that the free radical signaling molecule nitric oxide (NO) can directly inhibit the Fe(II)/2-OG-dependent DNA demethylases ten-eleven translocation (TET) and human AlkB homolog 2 (ALKBH2). Physiologic NO concentrations reversibly inhibited TET and ALKBH2 demethylase activity by binding to the mononuclear non-heme iron atom which formed a dinitrosyliron complex (DNIC) preventing cosubstrates (2-OG and O2) from binding. In cancer cells treated with exogenous NO, or cells endogenously synthesizing NO, there was a global increase in 5mC and 5-hydroxymethylcytosine (5hmC) in DNA, the substrates for TET, that could not be attributed to increased DNA methyltransferase activity. 5mC was also elevated in NO-producing cell-line-derived mouse xenograft and patient-derived xenograft tumors. Genome-wide DNA methylome analysis of cells chronically treated with NO (10 days) demonstrated enrichment of 5mC and 5hmC at gene-regulatory loci which correlated to changes in the expression of NO-regulated tumor-associated genes. Regulation of DNA methylation is distinctly different from canonical NO signaling and represents a novel epigenetic role for NO.

Publisher

Research Square Platform LLC

Reference97 articles.

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