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Quantitative relationship between microdosimetric quantities and plasmid DNA damage induced by auger electrons
Jieun Han1,2, Seohan Kim1,2, Sangseok Ha1,2
1Department of Biomedical Engineering, College of Medicine, The Catholic University of Korea, Seoul, Republic of Korea.
Physics in Medicine and Biology
|July 27, 2026
Summary
Microdosimetry quantities, frequency-mean lineal energy (yF) and dose-mean lineal energy (yD), predict initial DNA damage from Auger electrons and other radiation types. yF is a more sensitive predictor for Auger electron-induced DNA damage at low lineal energies.
Area of Science:
- Radiological Physics and Radiation Biology
- Nanodosimetry and Radiation Chemistry
Background:
- Understanding the physical mechanisms of radiation-induced DNA damage is crucial for radiation protection and therapy.
- Auger electrons (AEs) deposit energy at the nanometer scale, posing unique challenges for microdosimetric analysis.
- Microdosimetric quantities like lineal energy are potential physical predictors of initial DNA damage.
Purpose of the Study:
- To investigate the microdosimetric characteristics of Auger electrons (AEs).
- To evaluate microdosimetric quantities (yF and yD) as physical predictors of initial DNA damage.
- To assess the universality of these predictors across different radiation types (AEs, protons, alpha particles).
Main Methods:
- Monte Carlo simulations using OpenTOPAS to calculate frequency-mean lineal energy (yF) and dose-mean lineal energy (yD).
- Simulations were performed in spherical water targets (10-500 nm radii) for monoenergetic electrons (3-15 keV).
- DNA damage yields (strand breaks, double-strand breaks) were quantified using TOPAS-nBio with a plasmid DNA model.
Main Results:
- AEs showed site-radius dependency for yF and yD in 10-100 nm targets.
- Strong power-law correlations (R² ≥ 0.94 for yF, R² ≥ 0.89 for yD) were observed between microdosimetric quantities and DNA damage yields.
- A continuous microdosimetric-damage relationship was found for low-energy electrons, protons, and alpha particles; yF was a more sensitive predictor for AEs at low lineal energies (<10 keV/µm).
Conclusions:
- Microdosimetric quantities yF and yD effectively reflect nanoscale energy deposition patterns related to DNA strand break induction.
- The established microdosimetry-damage relationship is applicable to low-energy AEs, protons, and alpha particles.
- Frequency-mean lineal energy (yF) serves as a more sensitive physical predictor for initial DNA damage induced by Auger electrons in specific energy ranges.
Keywords:
DNA strand breakauger electronfrequency-mean lineal energymicrodosimetrytargeted radionuclide therapy
