The Effects of Dimethylsulfoxide and Oxygen on DNA Damage Induction and Repair Outcomes for Cells Irradiated by 62 MeV Proton and 3.31 MeV Helium Ions

Reactive oxygen species (ROS) play an essential role in radiation-induced indirect actions. In terms of DNA damage, double strand breaks (DSBs) have the greatest effects on the repair of DNA damage, cell survival and transformation. This study evaluated the biological effects of the presence of ROS...

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Main Authors: Chun-Chieh Chan, Ya-Yun Hsiao
Format: Article
Language:English
Published: MDPI AG 2021-04-01
Series:Journal of Personalized Medicine
Subjects:
Online Access:https://www.mdpi.com/2075-4426/11/4/286
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spelling doaj-fa352e3680b046d5a8c37470b26ad01f2021-04-08T23:04:53ZengMDPI AGJournal of Personalized Medicine2075-44262021-04-011128628610.3390/jpm11040286The Effects of Dimethylsulfoxide and Oxygen on DNA Damage Induction and Repair Outcomes for Cells Irradiated by 62 MeV Proton and 3.31 MeV Helium IonsChun-Chieh Chan0Ya-Yun Hsiao1Department of Electrical Engineering, National Chung Hsing University, Taichung 40227, TaiwanDepartment of Radiology, Chung Shan Medical University Hospital, Taichung 40201, TaiwanReactive oxygen species (ROS) play an essential role in radiation-induced indirect actions. In terms of DNA damage, double strand breaks (DSBs) have the greatest effects on the repair of DNA damage, cell survival and transformation. This study evaluated the biological effects of the presence of ROS and oxygen on DSB induction and mutation frequency. The relative biological effectiveness (RBE) and oxygen enhancement ratio (OER) of 62 MeV therapeutic proton beams and 3.31 MeV helium ions were calculated using Monte Carlo damage simulation (MCDS) software. Monte Carlo excision repair (MCER) simulations were used to calculate the repair outcomes (mutation frequency). The RBE values of proton beams decreased to 0.75 in the presence of 0.4 M dimethylsulfoxide (DMSO) and then increases to 0.9 in the presence of 2 M DMSO while the RBE values of 3.31 MeV helium ions increased from 2.9 to 5.7 (0‒2 M). The mutation frequency of proton beams also decreased from 0.008‒0.065 to 0.004‒0.034 per cell per Gy by the addition of 2 M DMSO, indicating that ROS affects both DSB induction and repair outcomes. These results show that the combined use of DMSO in normal tissues and an increased dose in tumor regions increases treatment efficiency.https://www.mdpi.com/2075-4426/11/4/286reactive oxygen speciesdimethylsulfoxideDNA damage inductionhypoxia
collection DOAJ
language English
format Article
sources DOAJ
author Chun-Chieh Chan
Ya-Yun Hsiao
spellingShingle Chun-Chieh Chan
Ya-Yun Hsiao
The Effects of Dimethylsulfoxide and Oxygen on DNA Damage Induction and Repair Outcomes for Cells Irradiated by 62 MeV Proton and 3.31 MeV Helium Ions
Journal of Personalized Medicine
reactive oxygen species
dimethylsulfoxide
DNA damage induction
hypoxia
author_facet Chun-Chieh Chan
Ya-Yun Hsiao
author_sort Chun-Chieh Chan
title The Effects of Dimethylsulfoxide and Oxygen on DNA Damage Induction and Repair Outcomes for Cells Irradiated by 62 MeV Proton and 3.31 MeV Helium Ions
title_short The Effects of Dimethylsulfoxide and Oxygen on DNA Damage Induction and Repair Outcomes for Cells Irradiated by 62 MeV Proton and 3.31 MeV Helium Ions
title_full The Effects of Dimethylsulfoxide and Oxygen on DNA Damage Induction and Repair Outcomes for Cells Irradiated by 62 MeV Proton and 3.31 MeV Helium Ions
title_fullStr The Effects of Dimethylsulfoxide and Oxygen on DNA Damage Induction and Repair Outcomes for Cells Irradiated by 62 MeV Proton and 3.31 MeV Helium Ions
title_full_unstemmed The Effects of Dimethylsulfoxide and Oxygen on DNA Damage Induction and Repair Outcomes for Cells Irradiated by 62 MeV Proton and 3.31 MeV Helium Ions
title_sort effects of dimethylsulfoxide and oxygen on dna damage induction and repair outcomes for cells irradiated by 62 mev proton and 3.31 mev helium ions
publisher MDPI AG
series Journal of Personalized Medicine
issn 2075-4426
publishDate 2021-04-01
description Reactive oxygen species (ROS) play an essential role in radiation-induced indirect actions. In terms of DNA damage, double strand breaks (DSBs) have the greatest effects on the repair of DNA damage, cell survival and transformation. This study evaluated the biological effects of the presence of ROS and oxygen on DSB induction and mutation frequency. The relative biological effectiveness (RBE) and oxygen enhancement ratio (OER) of 62 MeV therapeutic proton beams and 3.31 MeV helium ions were calculated using Monte Carlo damage simulation (MCDS) software. Monte Carlo excision repair (MCER) simulations were used to calculate the repair outcomes (mutation frequency). The RBE values of proton beams decreased to 0.75 in the presence of 0.4 M dimethylsulfoxide (DMSO) and then increases to 0.9 in the presence of 2 M DMSO while the RBE values of 3.31 MeV helium ions increased from 2.9 to 5.7 (0‒2 M). The mutation frequency of proton beams also decreased from 0.008‒0.065 to 0.004‒0.034 per cell per Gy by the addition of 2 M DMSO, indicating that ROS affects both DSB induction and repair outcomes. These results show that the combined use of DMSO in normal tissues and an increased dose in tumor regions increases treatment efficiency.
topic reactive oxygen species
dimethylsulfoxide
DNA damage induction
hypoxia
url https://www.mdpi.com/2075-4426/11/4/286
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