Base-sequence dependence of noncovalent complex formation and reactivity of benzo[a]pyrene diol epoxide with polynucleotides. 1988

N E Geacintov, and M Shahbaz, and V Ibanez, and K Moussaoui, and R G Harvey
Chemistry Department, New York University, New York 10003.

The base-sequence selectivity of the noncovalent binding of (+/-)-trans-7,8-dihydroxy-anti-9,10-epoxy-7,8,9,10-tetrahydrobenzo[a]pyr ene (BPDE) to a series of synthetic polynucleotides in aqueous solutions (5 mM sodium cacodylate buffer, 20 mM NaCl, pH 7.0, 22 degrees C) was investigated. The magnitude of a red-shifted absorbance at 353 nm, attributed to intercalative complex formation, was utilized to determine values of the association constant Kic. Intercalation in the alternating pyridine-purine polymers poly(dA-dT).(dA-dT) (Kic = 20,000 M-1), poly(dG-dC).(dG-dC) (4200 M-1), and poly(dA-dC).(dG-dT) (9600 M-1) is distinctly favored over intercalation in their nonalternating counterparts poly(dA).(dT) (780 M-1), poly(dG).(dC) (1800 M-1), and poly(dA-dG).(dT-dC) (5400 M-1). Methylation at the 5-position of cytosine gives rise to a significant enhancement of intercalative binding, and Kic is 22,000 M-1 in poly(dG-m5dG).(dG-m5dC). In a number of these polynucleotides, values of Kic for pyrene qualitatively follow those exhibited by BPDE, suggesting that the pyrenyl residue in BPDE is a primary factor in determining the extent of intercalation. Both BPDE and pyrene exhibit a distinct preference for intercalating within dA-dT and dG-m5dC sequences. The catalysis of the chemical reactions of BPDE (hydrolysis to tetrols and covalent adduct formation) is enhanced significantly in the presence of each of the polynucleotides studied, particularly in the dG-containing polymers. A model in which catalysis is mediated by physical complex formation accounts well for the experimentally observed enhancement in reaction rates of BPDE in the alternating polynucleotides; however, in the nonalternating polymers a different or more complex catalysis mechanism may be operative.(ABSTRACT TRUNCATED AT 250 WORDS)

UI MeSH Term Description Entries
D007364 Intercalating Agents Agents that are capable of inserting themselves between the successive bases in DNA, thus kinking, uncoiling or otherwise deforming it and therefore preventing its proper functioning. They are used in the study of DNA. Intercalating Agent,Intercalating Ligand,Intercalative Compound,Intercalator,Intercalators,Intercalating Ligands,Intercalative Compounds,Agent, Intercalating,Agents, Intercalating,Compound, Intercalative,Compounds, Intercalative,Ligand, Intercalating,Ligands, Intercalating
D007700 Kinetics The rate dynamics in chemical or physical systems.
D011119 Polynucleotides BIOPOLYMERS composed of NUCLEOTIDES covalently bonded in a chain. The most common examples are DNA and RNA chains. Polynucleotide
D004101 Dihydroxydihydrobenzopyrenes Benzopyrenes saturated in any two adjacent positions and substituted with two hydroxyl groups in any position. The majority of these compounds have carcinogenic or mutagenic activity. Benzopyrene Dihydrodiols,Dihydrobenzopyrene Diols,Dihydrodiolbenzopyrenes,Dihydrodiols, Benzopyrene,Diols, Dihydrobenzopyrene
D004247 DNA A deoxyribonucleotide polymer that is the primary genetic material of all cells. Eukaryotic and prokaryotic organisms normally contain DNA in a double-stranded state, yet several important biological processes transiently involve single-stranded regions. DNA, which consists of a polysugar-phosphate backbone possessing projections of purines (adenine and guanine) and pyrimidines (thymine and cytosine), forms a double helix that is held together by hydrogen bonds between these purines and pyrimidines (adenine to thymine and guanine to cytosine). DNA, Double-Stranded,Deoxyribonucleic Acid,ds-DNA,DNA, Double Stranded,Double-Stranded DNA,ds DNA
D001483 Base Sequence The sequence of PURINES and PYRIMIDINES in nucleic acids and polynucleotides. It is also called nucleotide sequence. DNA Sequence,Nucleotide Sequence,RNA Sequence,DNA Sequences,Base Sequences,Nucleotide Sequences,RNA Sequences,Sequence, Base,Sequence, DNA,Sequence, Nucleotide,Sequence, RNA,Sequences, Base,Sequences, DNA,Sequences, Nucleotide,Sequences, RNA
D001665 Binding Sites The parts of a macromolecule that directly participate in its specific combination with another molecule. Combining Site,Binding Site,Combining Sites,Site, Binding,Site, Combining,Sites, Binding,Sites, Combining
D013056 Spectrophotometry, Ultraviolet Determination of the spectra of ultraviolet absorption by specific molecules in gases or liquids, for example Cl2, SO2, NO2, CS2, ozone, mercury vapor, and various unsaturated compounds. (McGraw-Hill Dictionary of Scientific and Technical Terms, 4th ed) Ultraviolet Spectrophotometry
D015123 7,8-Dihydro-7,8-dihydroxybenzo(a)pyrene 9,10-oxide 7,8,8a,9a-Tetrahydrobenzo(10,11)chryseno (3,4-b)oxirene-7,8-diol. A benzopyrene derivative with carcinogenic and mutagenic activity. 7,8-Dihydroxy-9,10-Epoxy-7,8,9,10-Tetrahydrobenzo(a)pyrene,Benzo(a)pyrene 7,8-Dihydrodiol 9,10-Epoxide,7,8-BaP-9,10-Diol Epoxide,Anti-BaPDE,BPDE,Benzo(a)pyrene-7,8-diol 9,10-Epoxide,Anti BaPDE
D018736 DNA Adducts The products of chemical reactions that result in the addition of extraneous chemical groups to DNA. DNA Adduct,Adduct, DNA,Adducts, DNA

Related Publications

N E Geacintov, and M Shahbaz, and V Ibanez, and K Moussaoui, and R G Harvey
January 1993, Chemical research in toxicology,
N E Geacintov, and M Shahbaz, and V Ibanez, and K Moussaoui, and R G Harvey
January 1991, Chemical research in toxicology,
N E Geacintov, and M Shahbaz, and V Ibanez, and K Moussaoui, and R G Harvey
January 1996, Chemical research in toxicology,
N E Geacintov, and M Shahbaz, and V Ibanez, and K Moussaoui, and R G Harvey
February 2010, The journal of physical chemistry. A,
N E Geacintov, and M Shahbaz, and V Ibanez, and K Moussaoui, and R G Harvey
February 1990, Cancer research,
N E Geacintov, and M Shahbaz, and V Ibanez, and K Moussaoui, and R G Harvey
March 2003, Biochemistry,
N E Geacintov, and M Shahbaz, and V Ibanez, and K Moussaoui, and R G Harvey
August 1999, The Journal of biological chemistry,
N E Geacintov, and M Shahbaz, and V Ibanez, and K Moussaoui, and R G Harvey
January 1979, Cancer biochemistry biophysics,
N E Geacintov, and M Shahbaz, and V Ibanez, and K Moussaoui, and R G Harvey
March 1997, Proceedings of the National Academy of Sciences of the United States of America,
Copied contents to your clipboard!