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Updated: May 12, 2026

Continuous Fluorescence-Based Endonuclease-Coupled DNA Methylation Assay to Screen for DNA Methyltransferase Inhibitors
Published on: August 5, 2022
DNA-intercalators causing rapid re-expression of methylated and silenced genes in cancer cells
M Zulfiquer Hossain1, Megan A Healey, Calvin Lee
1Sidney Kimmel Comprehensive Cancer Center, Department of Oncology, Johns Hopkins University School of Medicine, Baltimore, Maryland, USA.
Abstract:
Epigenetic inactivation of tumor-suppressor and other regulatory genes plays a critical role in carcinogenesis. Transcriptional silencing is often maintained by DNA methyl transferase (DNMT)-mediated hypermethylation of CpG islands in promoter DNA. Nucleoside analogs including azacytidine and decitabine have been used to inhibit DNMT and re-activate genes, and are clinically used. Their shortcomings include a short half-life and a slow onset of action due to required nucleotide incorporation during DNA replication, which may limit clinical utility. It might be useful to begin to identify lead compounds having novel properties, specifically distinct and fast-acting gene desilencing. We previously identified chemicals augmenting gene expression in multiple reporter systems. We now report that a subset of these compounds that includes quinacrine re-expresses epigenetically silenced genes implicated in carcinogenesis. p16, TFPI2, the cadherins E-cadherin and CDH13, and the secreted frizzle-related proteins (SFRPs) SFRP1 and SFRP5 were desilenced in cancer cell lines. These lead compounds were fast-acting: re-expression occurred by 12-24 hours. Reactivation of silenced genes was accompanied by depletion of DNMT1 at the promoters of activated genes and demethylation of DNA. A model compound, 5175328, induced changes more rapidly than decitabine. These gene desilencing agents belonged to a class of acridine compounds, intercalated into DNA, and inhibited DNMT1 activity in vitro. Although to define the mechanism would be outside the scope of this initial report, this class may re-activate silenced genes in part by intercalating into DNA and subsequently inhibiting full DNMT1 activity. Rapid mechanisms for chemical desilencing of methylated genes therefore exist.
Insights
New compounds, including quinacrine, rapidly reverse epigenetic silencing of cancer-related genes by inhibiting DNA methyltransferase 1 (DNMT1). These fast-acting agents offer a potential alternative to existing therapies for gene reactivation.
Area of Science:
- Epigenetics and Cancer Biology
- Pharmacology and Drug Discovery
Background:
- Epigenetic gene silencing, particularly DNA hypermethylation of tumor suppressors, is a key driver of carcinogenesis.
- Current DNA methyltransferase (DNMT) inhibitors like azacytidine and decitabine have limitations including short half-life and slow action.
Purpose of the Study:
- To identify novel, fast-acting chemical compounds for epigenetic gene desilencing.
- To evaluate the efficacy of identified compounds in re-expressing silenced cancer-related genes.
Main Methods:
- Screening of previously identified gene-expression augmenting compounds.
- Testing lead compounds, including quinacrine and a model compound 5175328, in cancer cell lines.
- Assessing gene re-expression, DNA methyltransferase 1 (DNMT1) depletion at gene promoters, and DNA demethylation.
- In vitro DNMT1 inhibition assays for acridine compounds.
Main Results:
- Quinacrine and other acridine compounds rapidly re-expressed epigenetically silenced genes (e.g., p16, SFRPs, cadherins) within 12-24 hours.
- Gene reactivation correlated with DNMT1 depletion and DNA demethylation at target gene promoters.
- A model compound (5175328) demonstrated faster action than decitabine.
- Acridine compounds inhibited DNMT1 activity in vitro and may act by DNA intercalation.
Conclusions:
- Novel acridine-based compounds, including quinacrine, represent a class of fast-acting epigenetic gene desilencing agents.
- These compounds offer a promising alternative mechanism for reversing aberrant gene silencing in cancer.
- Rapid gene reactivation via DNMT1 inhibition presents a new therapeutic avenue.
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