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Assessment of Radio-Induced Damage in Endothelial Cells Irradiated with 40 kVp, 220 kVp, and 4 MV X-rays by Means of Micro and Nanodosimetric Calculations

The objective of this work was to study the differences in terms of early biological effects that might exist between different X-rays energies by using a mechanistic approach. To this end, radiobiological experiments exposing cell monolayers to three X-ray energies were performed in order to assess...

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Autores principales: Tang, Nicolas, Bueno, Marta, Meylan, Sylvain, Perrot, Yann, Tran, Hoang N., Freneau, Amélie, Dos Santos, Morgane, Vaurijoux, Aurélie, Gruel, Gaëtan, Bernal, Mario A., Bordage, Marie-Claude, Emfietzoglou, Dimitris, Francis, Ziad, Guatelli, Susanna, Ivanchenko, Vladimir, Karamitros, Mathieu, Kyriakou, Ioanna, Shin, Wook-Geun, Incerti, Sébastien, Villagrasa, Carmen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6940891/
https://www.ncbi.nlm.nih.gov/pubmed/31835321
http://dx.doi.org/10.3390/ijms20246204
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author Tang, Nicolas
Bueno, Marta
Meylan, Sylvain
Perrot, Yann
Tran, Hoang N.
Freneau, Amélie
Dos Santos, Morgane
Vaurijoux, Aurélie
Gruel, Gaëtan
Bernal, Mario A.
Bordage, Marie-Claude
Emfietzoglou, Dimitris
Francis, Ziad
Guatelli, Susanna
Ivanchenko, Vladimir
Karamitros, Mathieu
Kyriakou, Ioanna
Shin, Wook-Geun
Incerti, Sébastien
Villagrasa, Carmen
author_facet Tang, Nicolas
Bueno, Marta
Meylan, Sylvain
Perrot, Yann
Tran, Hoang N.
Freneau, Amélie
Dos Santos, Morgane
Vaurijoux, Aurélie
Gruel, Gaëtan
Bernal, Mario A.
Bordage, Marie-Claude
Emfietzoglou, Dimitris
Francis, Ziad
Guatelli, Susanna
Ivanchenko, Vladimir
Karamitros, Mathieu
Kyriakou, Ioanna
Shin, Wook-Geun
Incerti, Sébastien
Villagrasa, Carmen
author_sort Tang, Nicolas
collection PubMed
description The objective of this work was to study the differences in terms of early biological effects that might exist between different X-rays energies by using a mechanistic approach. To this end, radiobiological experiments exposing cell monolayers to three X-ray energies were performed in order to assess the yields of early DNA damage, in particular of double-strand breaks (DSBs). The simulation of these irradiations was set in order to understand the differences in the obtained experimental results. Hence, simulated results in terms of microdosimetric spectra and early DSB induction were analyzed and compared to the experimental data. Human umbilical vein endothelial cells (HUVECs) were irradiated with 40, 220 kVp, and 4 MV X-rays. The Geant4 Monte Carlo simulation toolkit and its extension Geant4-DNA were used for the simulations. Microdosimetric calculations aiming to determine possible differences in the variability of the energy absorbed by the irradiated cell population for those photon spectra were performed on 10,000 endothelial cell nuclei representing a cell monolayer. Nanodosimetric simulations were also carried out using a computation chain that allowed the simulation of physical, physico-chemical, and chemical stages on a single realistic endothelial cell nucleus model including both heterochromatin and euchromatin. DNA damage was scored in terms of yields of prompt DSBs per Gray (Gy) and per giga (10(9)) base pair (Gbp) and DSB complexity was derived in order to be compared to experimental data expressed as numbers of histone variant H2AX (γ-H2AX) foci per cell. The calculated microdosimetric spread in the irradiated cell population was similar when comparing between 40 and 220 kVp X-rays and higher when comparing with 4 MV X-rays. Simulated yields of induced DSB/Gy/Gbp were found to be equivalent to those for 40 and 220 kVp but larger than those for 4 MV, resulting in a relative biological effectiveness (RBE) of 1.3. Additionally, DSB complexity was similar between the considered photon spectra. Simulated results were in good agreement with experimental data obtained by IRSN (Institut de radioprotection et de sûreté nucléaire) radiobiologists. Despite differences in photon energy, few differences were observed when comparing between 40 and 220 kVp X-rays in microdosimetric and nanodosimetric calculations. Nevertheless, variations were observed when comparing between 40/220 kVp and 4 MV X-rays. Thanks to the simulation results, these variations were able to be explained by the differences in the production of secondary electrons with energies below 10 keV.
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spelling pubmed-69408912020-01-09 Assessment of Radio-Induced Damage in Endothelial Cells Irradiated with 40 kVp, 220 kVp, and 4 MV X-rays by Means of Micro and Nanodosimetric Calculations Tang, Nicolas Bueno, Marta Meylan, Sylvain Perrot, Yann Tran, Hoang N. Freneau, Amélie Dos Santos, Morgane Vaurijoux, Aurélie Gruel, Gaëtan Bernal, Mario A. Bordage, Marie-Claude Emfietzoglou, Dimitris Francis, Ziad Guatelli, Susanna Ivanchenko, Vladimir Karamitros, Mathieu Kyriakou, Ioanna Shin, Wook-Geun Incerti, Sébastien Villagrasa, Carmen Int J Mol Sci Article The objective of this work was to study the differences in terms of early biological effects that might exist between different X-rays energies by using a mechanistic approach. To this end, radiobiological experiments exposing cell monolayers to three X-ray energies were performed in order to assess the yields of early DNA damage, in particular of double-strand breaks (DSBs). The simulation of these irradiations was set in order to understand the differences in the obtained experimental results. Hence, simulated results in terms of microdosimetric spectra and early DSB induction were analyzed and compared to the experimental data. Human umbilical vein endothelial cells (HUVECs) were irradiated with 40, 220 kVp, and 4 MV X-rays. The Geant4 Monte Carlo simulation toolkit and its extension Geant4-DNA were used for the simulations. Microdosimetric calculations aiming to determine possible differences in the variability of the energy absorbed by the irradiated cell population for those photon spectra were performed on 10,000 endothelial cell nuclei representing a cell monolayer. Nanodosimetric simulations were also carried out using a computation chain that allowed the simulation of physical, physico-chemical, and chemical stages on a single realistic endothelial cell nucleus model including both heterochromatin and euchromatin. DNA damage was scored in terms of yields of prompt DSBs per Gray (Gy) and per giga (10(9)) base pair (Gbp) and DSB complexity was derived in order to be compared to experimental data expressed as numbers of histone variant H2AX (γ-H2AX) foci per cell. The calculated microdosimetric spread in the irradiated cell population was similar when comparing between 40 and 220 kVp X-rays and higher when comparing with 4 MV X-rays. Simulated yields of induced DSB/Gy/Gbp were found to be equivalent to those for 40 and 220 kVp but larger than those for 4 MV, resulting in a relative biological effectiveness (RBE) of 1.3. Additionally, DSB complexity was similar between the considered photon spectra. Simulated results were in good agreement with experimental data obtained by IRSN (Institut de radioprotection et de sûreté nucléaire) radiobiologists. Despite differences in photon energy, few differences were observed when comparing between 40 and 220 kVp X-rays in microdosimetric and nanodosimetric calculations. Nevertheless, variations were observed when comparing between 40/220 kVp and 4 MV X-rays. Thanks to the simulation results, these variations were able to be explained by the differences in the production of secondary electrons with energies below 10 keV. MDPI 2019-12-09 /pmc/articles/PMC6940891/ /pubmed/31835321 http://dx.doi.org/10.3390/ijms20246204 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Tang, Nicolas
Bueno, Marta
Meylan, Sylvain
Perrot, Yann
Tran, Hoang N.
Freneau, Amélie
Dos Santos, Morgane
Vaurijoux, Aurélie
Gruel, Gaëtan
Bernal, Mario A.
Bordage, Marie-Claude
Emfietzoglou, Dimitris
Francis, Ziad
Guatelli, Susanna
Ivanchenko, Vladimir
Karamitros, Mathieu
Kyriakou, Ioanna
Shin, Wook-Geun
Incerti, Sébastien
Villagrasa, Carmen
Assessment of Radio-Induced Damage in Endothelial Cells Irradiated with 40 kVp, 220 kVp, and 4 MV X-rays by Means of Micro and Nanodosimetric Calculations
title Assessment of Radio-Induced Damage in Endothelial Cells Irradiated with 40 kVp, 220 kVp, and 4 MV X-rays by Means of Micro and Nanodosimetric Calculations
title_full Assessment of Radio-Induced Damage in Endothelial Cells Irradiated with 40 kVp, 220 kVp, and 4 MV X-rays by Means of Micro and Nanodosimetric Calculations
title_fullStr Assessment of Radio-Induced Damage in Endothelial Cells Irradiated with 40 kVp, 220 kVp, and 4 MV X-rays by Means of Micro and Nanodosimetric Calculations
title_full_unstemmed Assessment of Radio-Induced Damage in Endothelial Cells Irradiated with 40 kVp, 220 kVp, and 4 MV X-rays by Means of Micro and Nanodosimetric Calculations
title_short Assessment of Radio-Induced Damage in Endothelial Cells Irradiated with 40 kVp, 220 kVp, and 4 MV X-rays by Means of Micro and Nanodosimetric Calculations
title_sort assessment of radio-induced damage in endothelial cells irradiated with 40 kvp, 220 kvp, and 4 mv x-rays by means of micro and nanodosimetric calculations
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6940891/
https://www.ncbi.nlm.nih.gov/pubmed/31835321
http://dx.doi.org/10.3390/ijms20246204
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