AT-rich islands in genomic DNA as a novel target for AT-specific DNA-reactive antitumor drugs

J M Woynarowski1, A V Trevino, K A Rodriguez

  • 1Cancer Therapy and Research Center, San Antonio, Texas 78245, USA. jmw1@saci.org

Insights

Anticancer drug bizelesin targets specific AT-rich DNA regions called "AT islands." These regions, similar to matrix attachment regions (MARs), concentrate drug lesions, explaining bizelesin

Area of Science:

  • Genomics
  • Molecular Biology
  • Drug Discovery

Background:

  • Interstrand cross-links induced by bizelesin at T(A/T)4A sites are linked to its anticancer hypercytotoxicity.
  • The genomic distribution of these T(A/T)4A motifs influences drug efficacy.

Purpose of the Study:

  • To investigate whether bizelesin's lethal effects stem from targeting specific genomic regions.
  • To identify and characterize DNA sequences that preferentially bind bizelesin.

Main Methods:

  • In silico analysis of human DNA sequences to predict T(A/T)4A motif distribution.
  • Experimental validation using naked DNA and cancer cells to map bizelesin adducts.
  • Sequence analysis to identify characteristics of bizelesin-targeted regions, including MAR potential.

Main Results:

  • T(A/T)4A motifs are scarce but concentrated in AT-rich minisatellite regions ('AT islands').
  • Bizelesin adducts experimentally clustered in AT islands, with significantly higher lesion levels compared to motif-poor DNA.
  • Identified AT islands share sequence attributes with matrix attachment regions (MARs), correlating with bizelesin binding sites.

Conclusions:

  • AT islands represent a novel class of critical targets for the anticancer drug bizelesin.
  • The targeting of MAR-like AT-rich non-coding domains contributes to bizelesin's mechanism of action.
  • Understanding these specific DNA targets can inform the development of more effective anticancer therapies.

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