Modelling radio-induced peroxidation of membrane lipids at ultrahigh dose-rate with pulsed beam

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Abstract

1 Background and Purpose FLASH radiotherapy, a technique based on delivering large doses in a single fraction at the micro/millisecond timescale, spares normal tissues from late radiation-induced toxicity, in an oxygen-dependent process, whilst keeping full anti-tumor efficiency. The original model of physical-chemical mechanisms [5] underlying the FLASH effect was modified to include a two-compartment (aqueous/lipid) system to take into account key interfacial reactions, and the pulsed nature of the beam. Materials and Methods The model predictions were tested by showing a linear correlation between experimentally measured biological outcomes reported in the literature and the final hydroperoxyl lipid [LOOH] f predicted by the model for the different irradiation timing patterns and oxygen concentrations. Results The primary, carbon-centered lipid radical [L • ] fades away in less than 5 ms, reproducing the experimental observation. The model predicts a linear correlation of [LOOH] f with the inverse of the square root of the dose rate, as experimentally observed. The predicted [LOOH] f correlates with the recognition ratio of mice irradiated at different dose rates and oxygen concentrations; with zebrafish embryos mean body length for different beam timing structures; with mouse skin toxicity even with dose splitting; and with the survival of mice for different doses per pulse and average dose rates. Conclusions The proposed radio-kinetic model attempts to synthesize the experimental results for different beam timing patterns. It successfully shows a correlation between the predicted [LOOH] f and the experimentally observed biological outcomes following irradiation with different dose rates, beam timing structures and oxygen concentrations.
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Background

and Purpose FLASH radiotherapy, a technique based on delivering large doses in a single fraction at the micro/millisecond timescale, spares normal tissues from late radiation-induced toxicity, in an oxygen-dependent process, whilst keeping full anti-tumor efficiency. The original model of physical-chemical mechanisms [5] underlying the FLASH effect was modified to include a two-compartment (aqueous/lipid) system to take into account key interfacial reactions, and the pulsed nature of the beam.

Materials and methods

The model predictions were tested by showing a linear correlation between experimentally measured biological outcomes reported in the literature and the final hydroperoxyl lipid [LOOH]f predicted by the model for the different irradiation timing patterns and oxygen concentrations.

Results

The primary, carbon-centered lipid radical [L•] fades away in less than 5 ms, reproducing the experimental observation. The model predicts a linear correlation of [LOOH]f with the inverse of the square root of the dose rate, as experimentally observed. The predicted [LOOH]f correlates with the recognition ratio of mice irradiated at different dose rates and oxygen concentrations; with zebrafish embryos mean body length for different beam timing structures; with mouse skin toxicity even with dose splitting; and with the survival of mice for different doses per pulse and average dose rates.

Conclusions

The proposed radio-kinetic model attempts to synthesize the experimental results for different beam timing patterns. It successfully shows a correlation between the predicted [LOOH]f and the experimentally observed biological outcomes following irradiation with different dose rates, beam timing structures and oxygen concentrations. Competing Interest Statement Rudi Labarbe and Lucian Hotoiu are Employees of Ion Beam Application S.A. (Louvain-La-Neuve, Belgium)

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last seen: 2026-05-20T01:45:00.602351+00:00