RadPhysBio: A Radiobiological Database for the Prediction of Cell Survival upon Exposure to Ionizing Radiation

被引:0
|
作者
Zanni, Vassiliki [1 ]
Papakonstantinou, Dimitris [2 ]
Kalospyros, Spyridon A. [1 ]
Karaoulanis, Dimitris [3 ]
Biz, Goekay Mehmet [1 ]
Manti, Lorenzo [4 ]
Adamopoulos, Adam [5 ]
Pavlopoulou, Athanasia [6 ,7 ]
Georgakilas, Alexandros G. [1 ]
机构
[1] Natl Tech Univ Athens NTUA, Sch Appl Math & Phys Sci, Phys Dept, DNA Damage Lab, Zografou Campous, Athens 15780, Greece
[2] Univ Paris Saclay, Dept Life Sci, F-91190 Paris, France
[3] Natl Tech Univ Athens, Sch Elect & Comp Engn, Athens 15780, Greece
[4] Univ Naples Federico II, Natl Inst Nucl Phys INFN, Dept Phys E Pancini, Sect Naples,Radiat Biophys Lab, I-80138 Naples, Italy
[5] Democritus Univ Thrace, Dept Med, Med Phys Lab, Alexandroupolis 68100, Greece
[6] Izmir Biomed & Genome Ctr IBG, TR-35340 Izmir, Turkiye
[7] Dokuz Eylul Univ, Izmir Int Biomed & Genome Inst, TR-35340 Izmir, Turkiye
关键词
database; ionizing radiations; radiobiology; biophysical model; machine learning; RELATIVE BIOLOGICAL EFFECTIVENESS; LINEAR-QUADRATIC MODEL; CLUSTERED DNA LESIONS; DAMAGE; IRRADIATION; REPAIR; SIMULATION; PROTONS; CYCLE;
D O I
10.3390/ijms25094729
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Based on the need for radiobiological databases, in this work, we mined experimental ionizing radiation data of human cells treated with X-rays, gamma-rays, carbon ions, protons and alpha-particles, by manually searching the relevant literature in PubMed from 1980 until 2024. In order to calculate normal and tumor cell survival alpha and beta coefficients of the linear quadratic (LQ) established model, as well as the initial values of the double-strand breaks (DSBs) in DNA, we used WebPlotDigitizer and Python programming language. We also produced complex DNA damage results through the fast Monte Carlo code MCDS in order to complete any missing data. The calculated alpha/beta values are in good agreement with those valued reported in the literature, where alpha shows a relatively good association with linear energy transfer (LET), but not beta. In general, a positive correlation between DSBs and LET was observed as far as the experimental values are concerned. Furthermore, we developed a biophysical prediction model by using machine learning, which showed a good performance for alpha, while it underscored LET as the most important feature for its prediction. In this study, we designed and developed the novel radiobiological 'RadPhysBio' database for the prediction of irradiated cell survival (alpha and beta coefficients of the LQ model). The incorporation of machine learning and repair models increases the applicability of our results and the spectrum of potential users.
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页数:19
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