FORMATION OF SINGLE AND DOUBLE STRAND BREAKS IN DNA ULTRAVIOLET IRRADIATED AT HIGH INTENSITY
- 1 July 1991
- journal article
- Published by Wiley in Photochemistry and Photobiology
- Vol. 54 (1) , 99-107
- https://doi.org/10.1111/j.1751-1097.1991.tb01991.x
Abstract
The induction of single‐strand breaks (SSB) by two quantum processes in DNA is well established. We now report that biphotonic processes result in double‐strand breaks (DSB) as well. pUC19 and bacteriophage M13 RF DNA were irradiated using an excimer laser (248 nm) at intensities of 107, 109, 1010and 1011W/m2and doses up to 30 kJ/m2. The proportion of DNA as supercoil, open circular, linear and short fragments was determined by gel electrophoresis. Linear molecules were noted at fluences where supercoiled DNA was still present. The random occurrence of independent SSB in proximity to each other on opposite strands (producing linear DNA) implies introduction of numerous SSB per molecule in the sample. If so, supercoiled DNA that has sustainednoSSB should not be observed.A model accounting for the amounts of supercoiled, open circular, linear and shorter fragments of DNA due to SSB, DSB and Scissions (opposition of two independently occurring SSB producing an apparent DSB) was developed, our experimental data and those of others were fit to the model, and quantum yields determined for SSB and DSB formation at each intensity. Results showed that high intensity laser radiation caused an increase in the quantum yields for both SSB and DSB formation. The mechanism of DSB formation is unknown, and may be due to simultaneous cleavage of both strands in one biphotonic event or thebiasedintroduction of an SSB opposite a preexisting SSB, requiring two biphotonic events.Keywords
This publication has 28 references indexed in Scilit:
- SEQUENCE‐SPECIFICITY OF THE ALKALI‐SENSITIVE LESIONS INDUCED IN DNA BY HIGH‐INTENSITY ULTRAVIOLET LASER RADIATIONPhotochemistry and Photobiology, 1990
- Two-quantum UV Photochemistry of Nucleic Acids: Comparison with Conventional Low-intensity UV Photochemistry and Radiation ChemistryInternational Journal of Radiation Biology, 1990
- PHOTOLYSIS OF PHOSPHODIESTER BONDS IN PLASMID DNA BY HIGH INTENSITY UV LASER IRRADIATIONPhotochemistry and Photobiology, 1988
- Footprinting of DNA secondary structure by high‐intensity (laser) ultraviolet irradiationFEBS Letters, 1985
- Laser biology and medicineNature, 1985
- Two-photon photochemistry of nucleic acid componentsSoviet Journal of Quantum Electronics, 1981
- The effect of high intensity ultraviolet irradiation on nucleic acids and their componentsFEBS Letters, 1980
- Evidence for Clustering of Pyrimidine Dimers on Opposite Strands of U.V.-irradiated Bacteriophage DNAInternational Journal of Radiation Biology and Related Studies in Physics, Chemistry and Medicine, 1974
- The use of interactive graphics to solve numerical problemsCommunications of the ACM, 1970
- A Study of the Kinetics of the Enzymatic Digestion of Deoxyribonucleic Acid1Journal of the American Chemical Society, 1956