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

M Marianne B. Palczewski H Hannah Petraitis Kuschman B Brian M. Hoffman (Departments of Chemistry and Molecular Biosciences) V Venkatesan Kathiresan H Hao Yang S Sharon A. Glynn D David L. Wilson E Eric T. Kool (Department of Chemistry, Stanford Cancer Institute) W William R. Montfort (Department of Chemistry and Biochemistry, University of Arizona) J Jenny Chang A Aydolun Petenkaya C Constantinos Chronis T Thomas R. Cundari (Department of Chemistry, Center for Advanced Scientific Computing and Modeling (CASCaM)) S Sushma Sappa K Kabirul Islam D Daniel W. McVicar Y Yu Fan Q Qingrong Chen D Daoud Meerzaman M Michael Sierk D Douglas D. Thomas

Abstract

Abstract DNA methylation at cytosine bases (5-methylcytosine, 5mC) is a heritable epigenetic mark regulating gene expression. While enzymes that metabolize 5mC are well-characterized, endogenous signaling molecules that regulate DNA methylation machinery have not been described. We report that physiological nitric oxide (NO) concentrations reversibly inhibit the DNA demethylases TET and ALKBH2 by binding to the mononuclear non-heme iron atom forming a dinitrosyliron complex (DNIC) and preventing cosubstrates from binding. In cancer cells treated with exogenous NO, or endogenously synthesizing NO, 5mC and 5-hydroxymethylcytosine (5hmC) increase, with no changes in DNA methyltransferase activity. 5mC is also significantly increased in NO-producing patient-derived xenograft tumors from mice. Genome-wide methylome analysis of cells chronically treated with NO (10 days) shows enrichment of 5mC and 5hmC at gene-regulatory loci, correlating with altered expression of NO-regulated tumor-associated genes. Regulation of DNA methylation is distinctly different from canonical NO signaling and represents a unique epigenetic role for NO.

Article Details

Volume / Issue Vol. 16, Issue 1
Published February 18, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (21)

M

Marianne B. Palczewski

H

Hannah Petraitis Kuschman

B

Brian M. Hoffman

Departments of Chemistry and Molecular Biosciences

V

Venkatesan Kathiresan

H

Hao Yang

S

Sharon A. Glynn

D

David L. Wilson

E

Eric T. Kool

Department of Chemistry, Stanford Cancer Institute

W

William R. Montfort

Department of Chemistry and Biochemistry, University of Arizona

J

Jenny Chang

A

Aydolun Petenkaya

C

Constantinos Chronis

T

Thomas R. Cundari

Department of Chemistry, Center for Advanced Scientific Computing and Modeling (CASCaM)

S

Sushma Sappa

K

Kabirul Islam

D

Daniel W. McVicar

Y

Yu Fan

Q

Qingrong Chen

D

Daoud Meerzaman

M

Michael Sierk

D

Douglas D. Thomas