PubMed HealthSearch

Biomedical subjects

K Raddatz

Publications and source records attributed to K Raddatz.

4 recordsLinked to original sources

DNA-damage detection in man after radiation exposure--the comet assay--its possible application for human biomonitoring.

The exposure of human beings to ionizing radiation is still of great concern to occupational and environmental medicine. The goal of this workshop is to identify a panel of biological markers that could be used in humans after exposure to ionizing radiation. The comet assay or single cell gel (SCG) assay is a new method that allows efficient determination of single-strand breaks (SSB) and double-strand breaks (DSB), as well as alkali-labile sites in the DNA of single cells. In order to demonstrate the practicability of the comet assay for the detection of DNA damage caused by low doses of ionizing radiation, we exposed human peripheral blood cells to radiation in vitro. The extent of DNA damage in blood cells irradiated with x-rays (0.05-1 Gy) was significantly increased above the control values even at 0.05 Gy and shows a clear dose-relationship. To investigate the repair kinetics for x-ray-induced DNA damage following acute and chronic (fractionated) irradiation, we exposed peripheral blood to 1 Gy and examined the tail moment at different time intervals. The effect of one acute dose is repaired within two h, whereas the effect of fractionated irradiation gives a totally different result. The tail moment of the initial damage increased indicating an accumulation of the damage, and the repair activity clearly decreased. Until now, there was no data available concerning DNA damage in vivo. For this reason, we explored patients subjected to radioiodine therapy as well as a Chernobyl liquidator.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult

Early effects of benzene exposure in mice. Hematological versus genotoxic effects.

Female BDF1 mice were exposed to 100, 300 and 900 ppm benzene 6 h/day, 5 days/week, up to 8 weeks. Hematological studies included peripheral blood data, T4 and T8 lymphocyte counts in the blood and the spleen, hemopoietic stem and progenitor cell assays in the marrow (CFU-S, CFU-C, BFU-E, CFU-E). The single cell gel assay ("comet assay") was applied in parallel with cells from the peripheral blood, bone marrow, spleen and liver. The results showed minor changes in the stem and progenitor cells and the development of a slight anemia at 4 and 8 weeks, in agreement with reported data. New was the increase of the T4/T8 ratio in the peripheral blood (not in the spleen) at the end of the first week of exposure to 300 and 900 ppm. The results of the "comet assay" indicate a much higher sensitivity to this test system (strand breaks and alkali labile sites of DNA). The tail moment indicative of the damage to DNA increased as early as 3 days with 300 ppm in the peripheral blood cells. Furthermore, the liver cells did react to a much higher extent than the other cells tested. With 100 ppm significant changes were seen in the liver after 5 days, but not in the blood. The repair, studied 24 and 48 h after the end of the exposure, was almost complete after 5-day exposure period in the blood and the liver, but not after 4 weeks of exposure with 300 ppm in the blood, and 100 and 300 ppm in the liver.

Administration, Inhalation

Does physical activity induce DNA damage?

The single cell gel electrophoresis (SCG) assay (comet assay) is a sensitive technique for detecting the presence of DNA strand-breaks and alkali-labile damage in individual cells. This technique was used to study peripheral blood cells from three volunteers after physical activity. The test subjects had to run on a treadmill and were checked for blood pressure and ECG, lactate concentration and creatine kinase activity. Blood was taken before and several times during and after the run. In a first multiple step test, the volunteers ran as long as possible with increasing speed. In a second test they had to run for 45 min with a fixed individual speed which was defined to ensure an aerobic metabolism. In the first test, the white blood cells of all subjects showed increased DNA migration in the SCG assay. The effect was seen 6 h after the end of the exercise and reached its maximum 24 h later. After 72 h, DNA migration decreased to about control level. The distribution of DNA migration among cells clearly demonstrated that the majority of white blood cells exhibited increased DNA migration and that the effect was not only due to a small fraction of damaged cells. From the same blood samples, blood cultures were set up to study a possible effect on the frequency of sister chromatid exchanges (SCE), another indicator for genotoxic effects. However, there was no significant increase in SCE in any of the cultures. In the second exercise, during aerobic metabolism, the effect on DNA migration was not seen.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult