TY - JOUR
T1 - 5-Formyluracil-Induced Perturbations of DNA Function
AU - Rogstad, Daniel K.
AU - Heo, Jiyoung
AU - Vaidehi, Nagarajan
AU - Goddard, William A.
AU - Burdzy, Artur
AU - Sowers, Lawrence C.
N1 - Rogstad, Daniel K. and Heo, Jiyoung and Vaidehi, Nagarajan and Goddard, William A., III and Burdzy, Artur and Sowers, Lawrence C. (2004) 5-Formyluracil-Induced Perturbations of DNA Function. Biochemistry, 43 (19). pp. 5688-5697. ISSN 0006-2960. https://resolver.caltech.edu/CaltechAUTHORS:20170125-114501336 Full text is not posted in this repository. Consult Related URLs below.
PY - 2004/5/18
Y1 - 2004/5/18
N2 - Oxidation of the thymine methyl group can generate 5-formyluracil (FoU), which is known to be both mutagenic and chemically unstable in DNA. Synthetic oligonucleotides containing FoU at defined sites have been prepared to investigate potential mechanisms by which FoU might perturb DNA function. The half-life of the glycosidic bond of an FoU residue in single-stranded DNA under physiological conditions of temperature and pH is estimated to be approximately 148 days, orders of magnitude shorter than the parent pyrimidine, thymine. This reduced stability of FoU residues in DNA is attributed to the inductive properties of the 5-formyl substituent. Oxidative modification of the thymine methyl group could also inhibit association with sequence-specific DNA-binding proteins. Alternatively, the 5-formyl substituent of FoU could cross-link nonspecifically with protein amino groups. Transcription factor AP-1 is known to make specific contacts with thymine methyl groups of DNA in its recognition sequence. Substitution of T by FoU is shown to inhibit AP-1 (c-Jun homodimer) binding with a ΔΔG of approximately 0.6 kcal/mol. No evidence of cross-link formation is observed with either AP-1 or polylysine. Molecular modeling studies on the FoU-containing oligonucleotide sequence corresponding to the duplex used in the experimental studies demonstrate that the 5-formyl substituent of an FoU residue paired with adenine lies in the plane of the pyrimidine base and is well protected from solvent on one face and only partially accessible on the other. The results of this study suggest that although FoU residues in DNA are considerably more labile than thymine, they are likely to be present long enough to miscode as well as interfere with DNA-protein interactions.
AB - Oxidation of the thymine methyl group can generate 5-formyluracil (FoU), which is known to be both mutagenic and chemically unstable in DNA. Synthetic oligonucleotides containing FoU at defined sites have been prepared to investigate potential mechanisms by which FoU might perturb DNA function. The half-life of the glycosidic bond of an FoU residue in single-stranded DNA under physiological conditions of temperature and pH is estimated to be approximately 148 days, orders of magnitude shorter than the parent pyrimidine, thymine. This reduced stability of FoU residues in DNA is attributed to the inductive properties of the 5-formyl substituent. Oxidative modification of the thymine methyl group could also inhibit association with sequence-specific DNA-binding proteins. Alternatively, the 5-formyl substituent of FoU could cross-link nonspecifically with protein amino groups. Transcription factor AP-1 is known to make specific contacts with thymine methyl groups of DNA in its recognition sequence. Substitution of T by FoU is shown to inhibit AP-1 (c-Jun homodimer) binding with a ΔΔG of approximately 0.6 kcal/mol. No evidence of cross-link formation is observed with either AP-1 or polylysine. Molecular modeling studies on the FoU-containing oligonucleotide sequence corresponding to the duplex used in the experimental studies demonstrate that the 5-formyl substituent of an FoU residue paired with adenine lies in the plane of the pyrimidine base and is well protected from solvent on one face and only partially accessible on the other. The results of this study suggest that although FoU residues in DNA are considerably more labile than thymine, they are likely to be present long enough to miscode as well as interfere with DNA-protein interactions.
KW - Binding, Competitive
KW - Glycosides/chemistry
KW - Protein Binding/drug effects
KW - Cross-Linking Reagents/chemistry
KW - Peptides/chemistry
KW - Thionucleotides/chemical synthesis
KW - Models, Molecular
KW - Polylysine/chemistry
KW - Transcription Factor AP-1/antagonists & inhibitors
KW - Uracil/analogs & derivatives
KW - DNA, Single-Stranded/chemistry
KW - Hydrolysis
KW - DNA/chemistry
KW - Mutagens/chemistry
KW - Nucleic Acid Heteroduplexes/chemistry
KW - Proto-Oncogene Proteins c-jun/antagonists & inhibitors
UR - https://www.scopus.com/pages/publications/2442622769
UR - https://www.scopus.com/pages/publications/2442622769#tab=citedBy
UR - https://www.mendeley.com/catalogue/5c301e08-6e9c-3976-b2ba-fc3a083270ff/
U2 - 10.1021/bi030247j
DO - 10.1021/bi030247j
M3 - Article
C2 - 15134443
SN - 0006-2960
VL - 43
SP - 5688
EP - 5697
JO - Biochemistry
JF - Biochemistry
IS - 19
ER -