CDA directs metabolism of epigenetic nucleosides revealing a therapeutic window in cancer
Author(s)
Type
Journal Article
Abstract
Cells require nucleotides to support DNA replication and repair damaged DNA. In addition to de novo synthesis, cells recycle nucleotides from the DNA of dying cells or from cellular material ingested through the diet. Salvaged nucleosides come with the complication that they can contain epigenetic modifications. Because epigenetic inheritance of DNA methylation mainly relies on copying of the modification pattern from parental strands1, 2, 3, random incorporation of pre-modified bases during replication could have profound implications for epigenome fidelity and yield adverse cellular phenotypes. Although the salvage mechanism of 5-methyl-2′deoxycytidine (5mdC) has been investigated before4, 5, 6, it remains unknown how cells deal with the recently identified oxidized forms of 5mdC: 5-hydroxymethyl-2′deoxycytidine (5hmdC), 5-formy-2′deoxycytidine (5fdC) and 5-carboxyl-2′deoxycytidine (5cadC)7, 8, 9, 10. Here we show that enzymes of the nucleotide salvage pathway display substrate selectivity, effectively protecting newly synthesized DNA from the incorporation of epigenetically modified forms of cytosine. Thus, cell lines and animals can tolerate high doses of these modified cytidines without any deleterious effects on physiology. Notably, by screening cancer cell lines for growth defects after exposure to 5hmdC, we unexpectedly identify a subset of cell lines in which 5hmdC or 5fdC administration leads to cell lethality. Using genomic approaches, we show that the susceptible cell lines overexpress cytidine deaminase (CDA). CDA converts 5hmdC and 5fdC into variants of uridine that are incorporated into DNA, resulting in accumulation of DNA damage, and ultimately, cell death. Our observations extend current knowledge of the nucleotide salvage pathway by revealing the metabolism of oxidized epigenetic bases, and suggest a new therapeutic option for cancers, such as pancreatic cancer, that have CDA overexpression and are resistant to treatment with other cytidine analogues11.
Date Issued
2015-08-06
Date Acceptance
2015-06-24
Citation
Nature, 2015, 524 (7563), pp.114-118
ISSN
0028-0836
Publisher
Nature Publishing Group
Start Page
114
End Page
118
Journal / Book Title
Nature
Volume
524
Issue
7563
Copyright Statement
© 2015 Macmillan Publishers Limited. All rights reserved.
Subjects
Science & Technology
Multidisciplinary Sciences
Science & Technology - Other Topics
HUMAN-LEUKEMIC CELLS
MONOPHOSPHATE KINASE
DNA
EXPRESSION
5-METHYL-2'-DEOXYCYTIDINE
5-HYDROXYMETHYLCYTOSINE
5-FORMYLCYTOSINE
5-METHYLCYTOSINE
REPLICATION
GLYCOSYLASE
5-Methylcytosine
Animals
Cell Death
Cell Line, Tumor
Cytidine
Cytidine Deaminase
Cytosine
DNA
DNA Damage
DNA-Directed DNA Polymerase
Deoxycytidine
Epigenesis, Genetic
Gene Expression Regulation, Enzymologic
Gene Expression Regulation, Neoplastic
Humans
Mice
Neoplasms
Nucleotides
Oxidation-Reduction
Phosphotransferases
Substrate Specificity
Up-Regulation
Uridine
Cell Line, Tumor
Animals
Humans
Mice
Neoplasms
DNA Damage
Cytosine
5-Methylcytosine
Cytidine Deaminase
Phosphotransferases
DNA-Directed DNA Polymerase
Nucleotides
DNA
Deoxycytidine
Cytidine
Uridine
Cell Death
Epigenesis, Genetic
Gene Expression Regulation, Enzymologic
Gene Expression Regulation, Neoplastic
Up-Regulation
Substrate Specificity
Oxidation-Reduction
General Science & Technology
Publication Status
Published
Date Publish Online
2015-07-22