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.

Oncotarget
|April 18, 2013
PubMed

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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