An understanding of the chemical principles for binding specific sites on double helical DNA with oligodeoxyribonucleotides (or their analogs) by triple strand formation would provide a minimum first step in the development of a human therapeutic strategy of genetic targeting. This could ultimately enable precise inactivation of undesirable DNA sequences (such as oncogenes or nonhuman viral DNA) within the human genome. During the next five years we will focus on a fundamental understanding of the thermodynamics of oligonucleotide-directed triple helix formation, initiate high resolution structure studies, study mechanistic details of quantitative covalent reactions within a triple helix complex such as alkylation and hydrolysis, synthesize novel ligands for simultaneous major/minor groove binding, and develop methods and strategies for in vivo studies of triple helix formation. Specifically, we will optimize and compare methods such as quantitative affinity cleaving titration and quantitative DNase I footprint titrations for characterizing the equilibrium constants and free energies values for association of oligonucleotides for single sites on relatively large double helical DNA under a broad range of solution conditions. We will examine the energetics of all 16 natural triplets in the pyrimidine.purine.pyrimidine triple helix motif and all 16 natural triplets in the purine.pyrimidine.purine triple helix motif. We will quantitate the temperature dependence and nearest neighbor dependence of triple helix formation. We will quantitate the energetics of triple helix stabilities with regard to base modifications (5-1-propynyl, PI), sugar modifications (2'-OH, -OMe, O-allyl) and phosphodiester modifications (stereoregular phosphorothioate). We will make a major commitment toward structural characterization of triple helical complexes by x-ray crystallography. We will carry out a kinetic analysis of sequence specific alkylation of double helical DNA by an N-bromoacetyloligonucleotide. We will extend these methods to sequence specific double strand cleavage of RNA. We will synthesize novel catalysts for the sequence specific hydrolysis of DNA and RNA. We will design and synthesize novel peptide-oligonucleotide hybrids for simultaneous cooperative binding in the minor and major groove of DNA. In a collaboration, we will combine our chemical strengths with an expert biology group to study triple helix formation in vivo.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
5R01GM035724-13
Application #
2634652
Study Section
Bio-Organic and Natural Products Chemistry Study Section (BNP)
Project Start
1986-01-01
Project End
1999-03-31
Budget Start
1998-01-01
Budget End
1999-03-31
Support Year
13
Fiscal Year
1998
Total Cost
Indirect Cost
Name
California Institute of Technology
Department
Type
Schools of Engineering
DUNS #
078731668
City
Pasadena
State
CA
Country
United States
Zip Code
91125
Taylor, M J; Dervan, P B (1997) Kinetic analysis of sequence-specific alkylation of DNA by pyrimidine oligodeoxyribonucleotide-directed triple-helix formation. Bioconjug Chem 8:354-64
Hacia, J G; Wold, B J; Dervan, P B (1994) Phosphorothioate oligonucleotide-directed triple helix formation. Biochemistry 33:5367-9
Distefano, M D; Dervan, P B (1993) Energetics of cooperative binding of oligonucleotides with discrete dimerization domains to DNA by triple helix formation. Proc Natl Acad Sci U S A 90:1179-83
Singleton, S F; Dervan, P B (1993) Equilibrium association constants for oligonucleotide-directed triple helix formation at single DNA sites: linkage to cation valence and concentration. Biochemistry 32:13171-9
Singleton, S F; Dervan, P B (1992) Influence of pH on the equilibrium association constants for oligodeoxyribonucleotide-directed triple helix formation at single DNA sites. Biochemistry 31:10995-1003
Luebke, K J; Dervan, P B (1992) Nonenymatic ligation of double-helical DNA by alternate-strand triple helix formation. Nucleic Acids Res 20:3005-9
Maher 3rd, L J; Dervan, P B; Wold, B (1992) Analysis of promoter-specific repression by triple-helical DNA complexes in a eukaryotic cell-free transcription system. Biochemistry 31:70-81
Maher 3rd, L J; Dervan, P B; Wold, B J (1990) Kinetic analysis of oligodeoxyribonucleotide-directed triple-helix formation on DNA. Biochemistry 29:8820-6
Haner, R; Dervan, P B (1990) Single-strand DNA triple-helix formation. Biochemistry 29:9761-5
Plum, G E; Park, Y W; Singleton, S F et al. (1990) Thermodynamic characterization of the stability and the melting behavior of a DNA triplex: a spectroscopic and calorimetric study. Proc Natl Acad Sci U S A 87:9436-40

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