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
Abstract:
Interstrand cross-links at T(A/T)4A sites in cellular DNA are associated with hypercytotoxicity of an anticancer drug, bizelesin. Here we evaluated whether these lethal effects reflect targeting critical genomic regions. An in silico analysis of human sequences showed that T(A/T)4A motifs are on average scarce and scattered. However, significantly higher local motif densities were identified in distinct minisatellite regions (200-1000 base pairs of approximately 85-100% AT), herein referred to as "AT islands." Experimentally detected bizelesin lesions agree with these in silico predictions. Actual bizelesin adducts clustered within the model AT island naked DNA, whereas motif-poor sequences were only sparsely adducted. In cancer cells, bizelesin produced high levels of lesions (approximately 4.7-7.1 lesions/kilobase pair/microM drug) in several prominent AT islands, compared with markedly lower lesion levels in several motif-poor loci and in bulk cellular DNA (approximately 0.8-1.3 and approximately 0.9 lesions/kilobase pair/microM drug, respectively). The identified AT islands exhibit sequence attributes of matrix attachment regions (MARs), domains that organize DNA loops on the nuclear matrix. The computed "MAR potential" and propensity for supercoiling-induced duplex destabilization (both predictive of strong MARs) correlate with the total number of bizelesin binding sites. Hence, MAR-like AT-rich non-coding domains can be regarded as a novel class of critical targets for anticancer drugs.
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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