6533b852fe1ef96bd12aa99e

RESEARCH PRODUCT

A nanodosimetric model of radiation-induced clustered DNA damage yields

G. Garty R. Schulte S. Shchemelinin Corinne Leloup G. Assaf A. Breskin R. Chechik V. Bashkirov J. Miligan B. Grosswendt

subject

Quantitative Biology::BiomoleculesAlgorithms Computer Simulation DNA/*radiation effects DNA Breaks[PHYS.PHYS.PHYS-MED-PH] Physics [physics]/Physics [physics]/Medical Physics [physics.med-ph][ PHYS.PHYS.PHYS-MED-PH ] Physics [physics]/Physics [physics]/Medical Physics [physics.med-ph]Genetic Monte Carlo Method Nanotechnology/instrumentation/*methods Plasmids/radiation effects Probability Protons/adverse effects Radiometry/instrumentation/*methods Reproducibility of Results Saccharomyces cerevisiae SoftwareDouble-Stranded/radiation effects DNA Damage/*radiation effects Helium/adverse effects *Models

description

International audience; We present a nanodosimetric model for predicting the yield of double strand breaks (DSBs) and non-DSB clustered damages induced in irradiated DNA. The model uses experimental ionization cluster size distributions measured in a gas model by an ion counting nanodosimeter or, alternatively, distributions simulated by a Monte Carlo track structure code developed to simulate the nanodosimeter. The model is based on a straightforward combinatorial approach translating ionizations, as measured or simulated in a sensitive gas volume, to lesions in a DNA segment of one-two helical turns considered equivalent to the sensitive volume of the nanodosimeter. The two model parameters, corresponding to the probability that a single ion detected by the nanodosimeter corresponds to a single strand break or a single lesion (strand break or base damage) in the equivalent DNA segment, were tuned by fitting the model-predicted yields to previously measured double-strand break and double-strand lesion yields in plasmid DNA irradiated with protons and helium nuclei. Model predictions were also compared to both yield data simulated by the PARTRAC code for protons of a wide range of different energies and experimental DSB and non-DSB clustered DNA damage yield data from the literature. The applicability and limitations of this model in predicting the LET dependence of clustered DNA damage yields are discussed.

https://hal-univ-bourgogne.archives-ouvertes.fr/hal-00680436