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dc.creatorChatzipapas, Konstantinos
dc.creatorĐorđević, Miloš
dc.creatorŽivković, Sara
dc.creatorTran, Ngoc Hoang
dc.creatorLampe, Nathanael
dc.creatorSakata, Dousatsu
dc.creatorPetrović, Ivan
dc.creatorRistić-Fira, Aleksandra
dc.creatorShin, Wook-Geun
dc.creatorZein, Sara
dc.creatorBrown, Jeremy M.C.
dc.creatorKyriakou, Ioanna
dc.creatorEmfietzoglou, Dimitris
dc.creatorGuatelli, Susanna
dc.creatorIncerti, Sebastien
dc.date.accessioned2023-07-10T08:00:38Z
dc.date.available2023-07-10T08:00:38Z
dc.date.issued2023
dc.identifier.issn1120-1797
dc.identifier.urihttps://vinar.vin.bg.ac.rs/handle/123456789/11202
dc.description.abstractPurpose: This study aimed to develop a computational environment for the accurate simulation of human cancer cell irradiation using Geant4-DNA. New cell geometrical models were developed and irradiated by alpha particle beams to induce DNA damage. The proposed approach may help further investigation of the benefits of external alpha irradiation therapy. Methods: The Geant4-DNA Monte Carlo (MC) toolkit allows the simulation of cancer cell geometries that can be combined with accurate modelling of physical, physicochemical and chemical stages of liquid water irradiation, including radiolytic processes. Geant4-DNA is used to calculate direct and non-direct DNA damage yields, such as single and double strand breaks, produced by the deposition of energy or by the interaction of DNA with free radicals. Results: In this study, the “molecularDNA” example application of Geant4-DNA was used to quantify early DNA damage in human cancer cells upon irradiation with alpha particle beams, as a function of linear energy transfer (LET). The MC simulation results are compared to experimental data, as well as previously published simulation data. The simulation results agree well with the experimental data on DSB yields in the lower LET range, while the experimental data on DSB yields are lower than the results obtained with the “molecularDNA” example in the higher LET range. Conclusion: This study explored and demonstrated the possibilities of the Geant4-DNA toolkit together with the “molecularDNA” example to simulate the helium beam irradiation of cancer cell lines, to quantify the early DNA damage, or even the following DNA damage response. © 2023 Associazione Italiana di Fisica Medica e Sanitariaen
dc.languageEnglish
dc.relationinfo:eu-repo/grantAgreement/MESTD/inst-2020/200017/RS//
dc.relationEuropean Space Agency for its support to Geant4-DNA through the ‘‘BioRad3’’ [project contract 4000132935/21/NL/CRS, 2021–2023]
dc.relationCNRS through PICS ‘‘DAMOCLES’’ (2018–2020)
dc.relationIEA ‘‘TOLERANCE’’ (2023–2024)
dc.relationHubert Curien Pavle Savic (PHC) ‘‘Monte Carlo simulation of irradiation with hadron beams’’ (grant number 337-00-93/2023-05/18) (2023–2024) France-Serbia projects
dc.rightsrestrictedAccess
dc.sourcePhysica Medica
dc.subjectCanceren
dc.subjectGeant4-DNAen
dc.subjectHeliumen
dc.subjectIrradiationen
dc.subjectMolecularDNAen
dc.subjectSimulationen
dc.titleGeant4-DNA simulation of human cancer cells irradiation with helium ion beamsen
dc.typearticleen
dc.rights.licenseARR
dc.citation.volume112
dc.identifier.wos001034546500001
dc.identifier.doi10.1016/j.ejmp.2023.102613
dc.citation.rankM21
dc.type.versionpublishedVersion
dc.identifier.scopus2-s2.0-85163145347


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