Cargando…
Biologically optimized helium ion plans: calculation approach and its in vitro validation
Treatment planning studies on the biological effect of raster-scanned helium ion beams should be performed, together with their experimental verification, before their clinical application at the Heidelberg Ion Beam Therapy Center (HIT). For this purpose, we introduce a novel calculation approach ba...
Autores principales: | , , , , , , , , , , , , , , , |
---|---|
Lenguaje: | eng |
Publicado: |
2016
|
Materias: | |
Acceso en línea: | https://dx.doi.org/10.1088/0031-9155/61/11/4283 http://cds.cern.ch/record/2268695 |
_version_ | 1780954709335474176 |
---|---|
author | Mairani, A Dokic, I Magro, G Tessonnier, T Kamp, F Carlson, D J Ciocca, M Cerutti, F Sala, P R Ferrari, A Böhlen, T T Jäkel, O Parodi, K Debus, J Abdollahi, A Haberer, T |
author_facet | Mairani, A Dokic, I Magro, G Tessonnier, T Kamp, F Carlson, D J Ciocca, M Cerutti, F Sala, P R Ferrari, A Böhlen, T T Jäkel, O Parodi, K Debus, J Abdollahi, A Haberer, T |
author_sort | Mairani, A |
collection | CERN |
description | Treatment planning studies on the biological effect of raster-scanned helium ion beams should be performed, together with their experimental verification, before their clinical application at the Heidelberg Ion Beam Therapy Center (HIT). For this purpose, we introduce a novel calculation approach based on integrating data-driven biological models in our Monte Carlo treatment planning (MCTP) tool. Dealing with a mixed radiation field, the biological effect of the primary $^4$He ion beams, of the secondary $^3$He and $^4$He (Z = 2) fragments and of the produced protons, deuterons and tritons (Z = 1) has to be taken into account. A spread-out Bragg peak (SOBP) in water, representative of a clinically-relevant scenario, has been biologically optimized with the MCTP and then delivered at HIT. Predictions of cell survival and RBE for a tumor cell line, characterized by ${{(\alpha /\beta )}_{\text{ph}}}=5.4$ Gy, have been successfully compared against measured clonogenic survival data. The mean absolute survival variation (${{\mu}_{\Delta \text{S}}}$ ) between model predictions and experimental data was 5.3% ± 0.9%. A sensitivity study, i.e. quantifying the variation of the estimations for the studied plan as a function of the applied phenomenological modelling approach, has been performed. The feasibility of a simpler biological modelling based on dose-averaged LET (linear energy transfer) has been tested. Moreover, comparisons with biophysical models such as the local effect model (LEM) and the repair-misrepair-fixation (RMF) model were performed. ${{\mu}_{\Delta \text{S}}}$ values for the LEM and the RMF model were, respectively, 4.5% ± 0.8% and 5.8% ± 1.1%. The satisfactorily agreement found in this work for the studied SOBP, representative of clinically-relevant scenario, suggests that the introduced approach could be applied for an accurate estimation of the biological effect for helium ion radiotherapy. |
id | oai-inspirehep.net-1602739 |
institution | Organización Europea para la Investigación Nuclear |
language | eng |
publishDate | 2016 |
record_format | invenio |
spelling | oai-inspirehep.net-16027392019-09-30T06:29:59Zdoi:10.1088/0031-9155/61/11/4283http://cds.cern.ch/record/2268695engMairani, ADokic, IMagro, GTessonnier, TKamp, FCarlson, D JCiocca, MCerutti, FSala, P RFerrari, ABöhlen, T TJäkel, OParodi, KDebus, JAbdollahi, AHaberer, TBiologically optimized helium ion plans: calculation approach and its in vitro validationOtherTreatment planning studies on the biological effect of raster-scanned helium ion beams should be performed, together with their experimental verification, before their clinical application at the Heidelberg Ion Beam Therapy Center (HIT). For this purpose, we introduce a novel calculation approach based on integrating data-driven biological models in our Monte Carlo treatment planning (MCTP) tool. Dealing with a mixed radiation field, the biological effect of the primary $^4$He ion beams, of the secondary $^3$He and $^4$He (Z = 2) fragments and of the produced protons, deuterons and tritons (Z = 1) has to be taken into account. A spread-out Bragg peak (SOBP) in water, representative of a clinically-relevant scenario, has been biologically optimized with the MCTP and then delivered at HIT. Predictions of cell survival and RBE for a tumor cell line, characterized by ${{(\alpha /\beta )}_{\text{ph}}}=5.4$ Gy, have been successfully compared against measured clonogenic survival data. The mean absolute survival variation (${{\mu}_{\Delta \text{S}}}$ ) between model predictions and experimental data was 5.3% ± 0.9%. A sensitivity study, i.e. quantifying the variation of the estimations for the studied plan as a function of the applied phenomenological modelling approach, has been performed. The feasibility of a simpler biological modelling based on dose-averaged LET (linear energy transfer) has been tested. Moreover, comparisons with biophysical models such as the local effect model (LEM) and the repair-misrepair-fixation (RMF) model were performed. ${{\mu}_{\Delta \text{S}}}$ values for the LEM and the RMF model were, respectively, 4.5% ± 0.8% and 5.8% ± 1.1%. The satisfactorily agreement found in this work for the studied SOBP, representative of clinically-relevant scenario, suggests that the introduced approach could be applied for an accurate estimation of the biological effect for helium ion radiotherapy.oai:inspirehep.net:16027392016 |
spellingShingle | Other Mairani, A Dokic, I Magro, G Tessonnier, T Kamp, F Carlson, D J Ciocca, M Cerutti, F Sala, P R Ferrari, A Böhlen, T T Jäkel, O Parodi, K Debus, J Abdollahi, A Haberer, T Biologically optimized helium ion plans: calculation approach and its in vitro validation |
title | Biologically optimized helium ion plans: calculation approach and its in vitro validation |
title_full | Biologically optimized helium ion plans: calculation approach and its in vitro validation |
title_fullStr | Biologically optimized helium ion plans: calculation approach and its in vitro validation |
title_full_unstemmed | Biologically optimized helium ion plans: calculation approach and its in vitro validation |
title_short | Biologically optimized helium ion plans: calculation approach and its in vitro validation |
title_sort | biologically optimized helium ion plans: calculation approach and its in vitro validation |
topic | Other |
url | https://dx.doi.org/10.1088/0031-9155/61/11/4283 http://cds.cern.ch/record/2268695 |
work_keys_str_mv | AT mairania biologicallyoptimizedheliumionplanscalculationapproachanditsinvitrovalidation AT dokici biologicallyoptimizedheliumionplanscalculationapproachanditsinvitrovalidation AT magrog biologicallyoptimizedheliumionplanscalculationapproachanditsinvitrovalidation AT tessonniert biologicallyoptimizedheliumionplanscalculationapproachanditsinvitrovalidation AT kampf biologicallyoptimizedheliumionplanscalculationapproachanditsinvitrovalidation AT carlsondj biologicallyoptimizedheliumionplanscalculationapproachanditsinvitrovalidation AT cioccam biologicallyoptimizedheliumionplanscalculationapproachanditsinvitrovalidation AT ceruttif biologicallyoptimizedheliumionplanscalculationapproachanditsinvitrovalidation AT salapr biologicallyoptimizedheliumionplanscalculationapproachanditsinvitrovalidation AT ferraria biologicallyoptimizedheliumionplanscalculationapproachanditsinvitrovalidation AT bohlentt biologicallyoptimizedheliumionplanscalculationapproachanditsinvitrovalidation AT jakelo biologicallyoptimizedheliumionplanscalculationapproachanditsinvitrovalidation AT parodik biologicallyoptimizedheliumionplanscalculationapproachanditsinvitrovalidation AT debusj biologicallyoptimizedheliumionplanscalculationapproachanditsinvitrovalidation AT abdollahia biologicallyoptimizedheliumionplanscalculationapproachanditsinvitrovalidation AT haberert biologicallyoptimizedheliumionplanscalculationapproachanditsinvitrovalidation |