INDUCTION AND REJOINING OF DNA DOUBLE-STRAND BREAKS IN CHINESE-HAMSTER V79-4 CELLS IRRADIATED WITH CHARACTERISTIC ALUMINUM-K AND COPPER-L ULTRASOFT X-RAYS
Sw. Botchway et al., INDUCTION AND REJOINING OF DNA DOUBLE-STRAND BREAKS IN CHINESE-HAMSTER V79-4 CELLS IRRADIATED WITH CHARACTERISTIC ALUMINUM-K AND COPPER-L ULTRASOFT X-RAYS, Radiation research, 148(4), 1997, pp. 317-324
Characteristic aluminum K (Al-K) (energy of 1.5 keV) and copper L (Cu-
L) (energy of similar to 0.96 keV) ultrasoft X rays have been used to
investigate the effectiveness of the numerous low-energy secondary ele
ctrons produced by low-linear energy transfer (LET) ionizing radiation
. Cellular inactivation and induction and rejoining of DNA double-stra
nd breaks (DSBs) in Chinese hamster V79-4 cells irradiated as monolaye
rs with these ultrasoft X radiations have been studied under aerobic a
nd anaerobic conditions. The mean cell thickness, determined by confoc
al laser scanning fluorescence microscopy, was used to calculate the m
ean dose to the nucleus of the irradiated cells. Relative to Co-60 gam
ma rays, the relative biological effectiveness (RBE) for cellular inac
tivation at 10% survival is 1.7 +/- 0.1 and 2.3 +/- 0.3 for Al-K and C
u-L ultrasoft X rays, respectively, The RBE values for induction of DS
Bs of 2.5 +/- 0.2 and 3.0 +/- 0.3 for Al-K and Cu, X rays, respectivel
y, were determined after irradiation at 277 K using the technique of p
ulsed-field gel electrophoresis. Induction of DSBs is linearly depende
nt on dose. Oxygen enhancement ratios of 1.9 and 2.1 for cellular inac
tivation and DSB induction, respectively, were obtained with Al-K X ra
ys. These values are less than those for Co-60 gamma radiation. The re
pair kinetics for rejoining of DSBs after a dose of 15 Gy is similar f
or both X-ray energies and Co-60 gamma rays with a first half-life of
18-22 +/- 5 min. From these studies, it is suggested that induction of
DSBs by low-LET radiations such as Co-60 gamma rays reflects clustere
d damage produced predominantly by low-energy electron ''track ends,''
which represent about 30% of the total dose. (C) 1997 by Radiation Re
search Society.