Ji Taotao,Li Taosheng,Yu Weiyue,et al.Geant4-DNA-based simulation of the radiobiological effects of proton radiation-induced damage to DNA strands of Caenorhabditis elegans[J].Chinese Journal of Radiological Medicine and Protection,2024,44(7):562-570
Geant4-DNA-based simulation of the radiobiological effects of proton radiation-induced damage to DNA strands of Caenorhabditis elegans
Received:August 05, 2023  
DOI:10.3760/cma.j.cn112271-20230805-00032
KeyWords:Geant4-DNA  Caenorhabditis elegans  Proton  DNA double-strand break  Relative biological effect
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Author NameAffiliationE-mail
Ji Taotao Institute of Nuclear Energy Safety Technology, Hefei Institutes of Physical Science, Chinese Academy of Sciences, Hefei 230031, China
Science Island Branch, Graduate School of USTC, Hefei 230026, China 
 
Li Taosheng Institute of Nuclear Energy Safety Technology, Hefei Institutes of Physical Science, Chinese Academy of Sciences, Hefei 230031, China
Science Island Branch, Graduate School of USTC, Hefei 230026, China 
 
Yu Weiyue Department of Nuclear Medicine, Basic Medical College, Anhui Medical University, Hefei 230032, China  
Xu Zhao Institute of Nuclear Energy Safety Technology, Hefei Institutes of Physical Science, Chinese Academy of Sciences, Hefei 230031, China zhao.xu@inest.cas.cn 
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Abstract::
      Objective To calculate the yield and relative biological effectiveness (RBE) of proton radiation-induced DNA damage to C. elegans germ cells using the Geant4-DNA toolkit in order to explore the biological effects of proton radiation on Caenorhabditis elegans. Methods A DNA model for a 20-μm-diameter C. elegans germ cell was built using Hilbert curves within the Geant4-DNA toolkit. By simulating DNA damage induced by proton radiation at varying energy levels (100, 50, 20, 5 and 2 MeV), the correlations between DNA double-strand break yields (YDSBs) and different parameters such as physics constructors, energy threshold (ET) models, and free radical scavenging distances were explored, and the result were compared with biological experimental data (20 MeV proton). The DNA damage types from varying energy levels of protons were defined, and the relative biological effectiveness of DNA double-strand breaks (RBEDSB) values were calculated using the RBEDSB mathematical model. Results The analysis of proton radiation-induced DNA damage under varying physics constructors, ET models, and free radical scavenging distances indicated that the proton radiation-induced YDSBs were the lowest when physics constructor 2 was utilized, while the YDSBs under physics constructors 4 and 6 differed slightly. The proton radiation-induced YDSBs gradually decreased with a rise in both the single ET and free radical scavenging distance. The comparison revealed that the simulation result were the closest to biological experimental data under physics constructor 4, a single ET model of 21.25 eV, and a radical scavenging distance of 9 nm, with disparities approximating 8.3%. Calculated RBEDSB values for protons spanned 1.02 to 1.85, with a lower proton energy corresponding to higher RBEDSB values. Conclusions Proton radiation-induced YDSBs in C. elegans derived using Geant4-DNA simulations align well with relevant assessments using molecular biology. This study provides a vital means for understanding and predicting the biological effects stemming from proton radiation
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