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Updated: May 24, 2026

Continuous Fluorescence-Based Endonuclease-Coupled DNA Methylation Assay to Screen for DNA Methyltransferase Inhibitors
Published on: August 5, 2022
5-aza-2'-deoxycytidine-induced genome rearrangements are mediated by DNMT1
1Department of Genetics, Albert Einstein College of Medicine, Bronx, NY 10461, USA. alex.maslov@einstein.yu.edu
Abstract:
Observations that genome-wide DNA hypomethylation induces genome instability and tumors in animals caution against the indiscriminate use of demethylating agents, such as 5-aza-2'-deoxycytidine (5-Aza-dC). Using primary mouse embryonic fibroblasts harboring a lacZ mutational reporter construct that allows the quantification and characterization of a wide range of mutational events, we found that, in addition to demethylation, treatment with 5-Aza-dC induces γ-H2AX expression, a marker for DNA breaks, and both point mutations and genome rearrangements. To gain insight into the source of these mutations, we first tested the hypothesis that the mutagenic effect of 5-Aza-dC may be directly mediated through the DNA methyltransferase 1 (DNMT1) covalently trapped in 5-Aza-dC-substituted DNA. Knockdown of DNMT1 resulted in increased resistance to the cytostatic effects of 5-Aza-dC, delayed onset of γ-H2AX expression and a significant reduction in the frequency of genome rearrangements. There was no effect on the 5-Aza-dC-induced point mutations. An alternative mechanism for 5-Aza-dC-induced demethylation and genome rearrangements via activation-induced cytidine deaminase (AID) followed by base excision repair (BER) was found not to be involved. That is, 5-Aza-dC treatment did not significantly induce AID expression and inhibition of BER did not reduce the frequency of genome rearrangements. Thus, our results indicate that the formation of DNMT1 adducts is the prevalent mechanism of 5-Aza-dC-induced genome rearrangements, although hypomethylation per se may still contribute. As the therapeutic effects of 5-Aza-dC greatly depend on the presence of DNMT1, the expression level of DNA methyltransferases in tumors may serve as a prognostic factor for the efficacy of 5-Aza-dC treatment.
Insights
The DNA demethylating agent 5-aza-2'-deoxycytidine (5-Aza-dC) causes DNA breaks and mutations. Trapping of DNA methyltransferase 1 (DNMT1) by 5-Aza-dC is the main cause of these genome rearrangements.
Area of Science:
- Genetics
- Molecular Biology
- Cancer Research
Background:
- Genome-wide DNA hypomethylation is linked to genome instability and tumor formation.
- Demethylating agents like 5-aza-2 -deoxycytidine (5-Aza-dC) are used in cancer therapy but carry risks.
- The precise mechanisms underlying 5-Aza-dC-induced genotoxicity require further elucidation.
Purpose of the Study:
- To investigate the mutagenic effects of 5-Aza-dC on primary mouse embryonic fibroblasts.
- To determine the role of DNA methyltransferase 1 (DNMT1) in 5-Aza-dC-induced mutations.
- To explore alternative mechanisms, including activation-induced cytidine deaminase (AID) and base excision repair (BER), in 5-Aza-dC genotoxicity.
Main Methods:
- Utilized primary mouse embryonic fibroblasts with a lacZ mutational reporter construct.
- Quantified and characterized point mutations and genome rearrangements following 5-Aza-dC treatment.
- Assessed the impact of DNMT1 knockdown and inhibition of BER on 5-Aza-dC-induced genotoxicity.
Main Results:
- 5-Aza-dC treatment induced DNA breaks (γ-H2AX expression), point mutations, and genome rearrangements.
- Knockdown of DNMT1 reduced 5-Aza-dC's cytostatic effects and significantly decreased genome rearrangements.
- 5-Aza-dC did not significantly induce AID expression, and BER inhibition did not affect genome rearrangement frequency.
Conclusions:
- Formation of DNMT1 adducts is the primary mechanism for 5-Aza-dC-induced genome rearrangements.
- While hypomethylation may contribute, DNMT1 trapping is the predominant driver of rearrangements.
- Tumor DNMT1 expression levels could serve as a prognostic factor for 5-Aza-dC treatment efficacy.
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