Dose-rate dependent stochastic effects in radiation cell-survival models
- 1 September 1990
- journal article
- conference paper
- Published by Springer Nature in Radiation and Environmental Biophysics
- Vol. 29 (3) , 169-184
- https://doi.org/10.1007/bf01210521
Abstract
Summary When cells are subjected to ionizing radiation the specific energy rate (microscopic analog of dose-rate) varies from cell to cell. Within one cell, this rate fluctuates during the course of time; a crossing of a sensitive cellular site by a high energy charged particle produces many ionizations almost simultaneously, but during the interval between events no ionizations occur. In any cell-survival model one can incorporate the effect of such fluctuations without changing the basic biological assumptions. Using stochastic differential equations and Monte Carlo methods to take into account stochastic effects we calculated the dose-survival relationships in a number of current cell survival models. Some of the models assume quadratic misrepair; others assume saturable repair enzyme systems. It was found that a significant effect of random fluctuations is to decrease the theoretically predicted amount of dose-rate sparing. In the limit of low dose-rates neglecting the stochastic nature of specific energy rates often leads to qualitatively misleading results by overestimating the surviving fraction drastically. In the opposite limit of acute irradiation, analyzing the fluctuations in rates merely amounts to analyzing fluctuations in total specific energyvia the usual microdosimetric specific energy distribution function, and neglecting fluctuations usually underestimates the surviving fraction. The Monte Carlo methods interpolate systematically between the low dose-rate and high dose-rate limits. As in other approaches, the slope of the survival curve at low dose-rates is virtually independent of dose and equals the initial slope of the survival curve for acute radiation.Keywords
This publication has 39 references indexed in Scilit:
- The Dose Rate Dependence of the Relative Biological Effectiveness of 241 Am versus 226 Ra g RaysRadiation Research, 1989
- Calculation of Initial Yields of Single- and Double-strand Breaks in Cell Nuclei from Electrons, Protons and Alpha ParticlesInternational Journal of Radiation Biology, 1989
- Recovery from Radiation Damage in Human Squamous Carcinoma of the CervixInternational Journal of Radiation Biology, 1989
- On the probability of interaction between elementary radiation-induced chromosomal injuriesRadiation and Environmental Biophysics, 1988
- Effects of Continuous Low Dose-Rate Irradiation: Computer SimulationsCell Proliferation, 1988
- Dose-rate effects in normal and malignant cells of human originThe British Journal of Radiology, 1987
- Effect of Cell-cycle Position and Dose on the Kinetics of DNA Double-strand Breakage Repair in X-irradiated Chinese Hamster CellsInternational Journal of Radiation Biology and Related Studies in Physics, Chemistry and Medicine, 1987
- The Repair-Misrepair Model in Radiobiology: Comparison to Other ModelsRadiation Research, 1985
- Saturable Repair Models of Radiation Action in Mammalian CellsRadiation Research, 1985
- An ‘Incomplete-repair’ Model for Survival after Fractionated and Continuous IrradiationsInternational Journal of Radiation Biology, 1985