Literature DB >> 11327873

Evaluation of the influence of compound structure on stacked-dimer formation in the DNA minor groove.

L Wang1, C Carrasco, A Kumar, C E Stephens, C Bailly, D W Boykin, W D Wilson.   

Abstract

The Human Genome Project as well as sequencing of the genomes of other organisms offers a wealth of DNA targets for both therapeutic and diagnostic applications, and it is important to develop additional DNA binding motifs to fully exploit the potential of this new information. We have recently found that an aromatic dication, DB293, with an amidine-phenyl-furan-benzimidazole-amidine structure can recognize specific sequences of DNA by binding in the minor groove as a dimer [Wang, L., Bailly, C., Kumar, A., Ding, D., Bajic, M., Boykin, D. W., and Wilson, W. D. (2000) Proc. Natl. Acad. Sci. U.S.A. 97, 12-16]. The dimer binding is strong, highly cooperative and, in contrast to many closely related heterocyclic dications, has both GC and AT base pairs in the minor groove binding site. The aromatic heterocycle stacked dimer is quite different in structure from the polyamide-lexitropsin type compounds, and it is a dication while all lexitropsin dimers are monocations. The heterocyclic dimer represents only the second small molecule class that can recognize mixed sequences of DNA. To test the structural limits on the new type of complex, it is important to probe the influence of compound charge, chemical groups, and structural features. The effects of these compound molecular variations on DNA complex formation with several DNA sequences were evaluated by DNase I footprinting, CD and UV spectroscopy, thermal melting, and quantitative analysis with surface plasmon resonance biosensor methods. Conversion of the amidines to guanidinium groups does permit the cooperative dimer to form but removal of one amidine or addition of an alkyl group to the amidine strongly inhibited dimer formation. Changing the phenyl of DB293 to a benzimidazole or the benzimidazole to a phenyl or benzofuran also inhibited dimer formation. The results show that formation of the minor groove stacked-dimer complex is very sensitive to compound structure. The discovery of the aromatic dimer mode offers new opportunities to enhance the specificity and expand the range of applications of the compounds that target DNA.

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Year:  2001        PMID: 11327873     DOI: 10.1021/bi002301r

Source DB:  PubMed          Journal:  Biochemistry        ISSN: 0006-2960            Impact factor:   3.162


  16 in total

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Review 4.  Using Genome Sequence to Enable the Design of Medicines and Chemical Probes.

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Journal:  Nucleic Acids Res       Date:  2001-08-15       Impact factor: 16.971

6.  Resolution of mixed site DNA complexes with dimer-forming minor-groove binders by using electrospray ionization mass spectrometry: compound structure and DNA sequence effects.

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7.  Antileishmanial activities of several classes of aromatic dications.

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Review 8.  Binding to the DNA minor groove by heterocyclic dications: from AT-specific monomers to GC recognition with dimers.

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Journal:  Curr Protoc Nucleic Acid Chem       Date:  2012-12

9.  Influence of DNA structure on adjacent site cooperative binding.

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10.  Detection of inhibition of bovine viral diarrhea virus by aromatic cationic molecules.

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Journal:  Antimicrob Agents Chemother       Date:  2003-07       Impact factor: 5.191

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