Cargando…
Monitoring Proton Therapy Through in-Beam PET: An Experimental Phantom Study
In this paper, we investigate the use of a positron emission tomography (PET) system to monitor the proton therapy. The monitoring procedure is based on the comparison between the β+ activity generated in the irradiated volume during the treatment, with the β+ activity distribution obtained with Mon...
Autores principales: | , , , , , , , , , , , , , , , , |
---|---|
Lenguaje: | eng |
Publicado: |
2020
|
Materias: | |
Acceso en línea: | https://dx.doi.org/10.1109/trpms.2019.2924036 http://cds.cern.ch/record/2759043 |
_version_ | 1780970295622893568 |
---|---|
author | Topi, A Muraro, S Battistoni, G Belcari, N Bisogni, M G Camarlinghi, N Del Guerra, A Ferrari, A Kopec, R Kraan, A C Krzempek, D Krzempek, K Morrocchi, M Olko, P Sala, P Sportelli, G Rosso, V |
author_facet | Topi, A Muraro, S Battistoni, G Belcari, N Bisogni, M G Camarlinghi, N Del Guerra, A Ferrari, A Kopec, R Kraan, A C Krzempek, D Krzempek, K Morrocchi, M Olko, P Sala, P Sportelli, G Rosso, V |
author_sort | Topi, A |
collection | CERN |
description | In this paper, we investigate the use of a positron
emission tomography (PET) system to monitor the proton therapy. The monitoring procedure is based on the comparison
between the β+ activity generated in the irradiated volume during the treatment, with the β+ activity distribution obtained
with Monte Carlo (MC) simulation. The dedicated PET system
is a dual head detection system; each head is composed of
nine scintillating LYSO crystal matrices read out independently
with a custom modularized acquisition system. Our experimental
data were acquired at the Cyclotron Centre Bronowice, Institute
Nuclear Physics in Kraków, Poland, and were simulated with
the FLUKA MC code. Homogeneous and heterogeneous plastic
phantoms were irradiated with monoenergetic 130 MeV protons.
The capabilities of our PET system to distinguish different irradiated materials were investigated, and the proton pencil-beams
were used as probes. Our focus was to analyze the activity width
and the total activity event number in several cases. Irradiations
were performed using either single pencil-beams one at a time, or
two pencil-beams during the same data taking. The comparison
of 1-D activity profile for experimental data and MC simulation
were always in good agreement showing that, the treatment quality assessment in proton therapy can be based on β+ activity
measurements. |
id | oai-inspirehep.net-1850506 |
institution | Organización Europea para la Investigación Nuclear |
language | eng |
publishDate | 2020 |
record_format | invenio |
spelling | oai-inspirehep.net-18505062021-05-11T13:18:27Zdoi:10.1109/trpms.2019.2924036http://cds.cern.ch/record/2759043engTopi, AMuraro, SBattistoni, GBelcari, NBisogni, M GCamarlinghi, NDel Guerra, AFerrari, AKopec, RKraan, A CKrzempek, DKrzempek, KMorrocchi, MOlko, PSala, PSportelli, GRosso, VMonitoring Proton Therapy Through in-Beam PET: An Experimental Phantom StudyOtherNuclear Physics - ExperimentIn this paper, we investigate the use of a positron emission tomography (PET) system to monitor the proton therapy. The monitoring procedure is based on the comparison between the β+ activity generated in the irradiated volume during the treatment, with the β+ activity distribution obtained with Monte Carlo (MC) simulation. The dedicated PET system is a dual head detection system; each head is composed of nine scintillating LYSO crystal matrices read out independently with a custom modularized acquisition system. Our experimental data were acquired at the Cyclotron Centre Bronowice, Institute Nuclear Physics in Kraków, Poland, and were simulated with the FLUKA MC code. Homogeneous and heterogeneous plastic phantoms were irradiated with monoenergetic 130 MeV protons. The capabilities of our PET system to distinguish different irradiated materials were investigated, and the proton pencil-beams were used as probes. Our focus was to analyze the activity width and the total activity event number in several cases. Irradiations were performed using either single pencil-beams one at a time, or two pencil-beams during the same data taking. The comparison of 1-D activity profile for experimental data and MC simulation were always in good agreement showing that, the treatment quality assessment in proton therapy can be based on β+ activity measurements.oai:inspirehep.net:18505062020 |
spellingShingle | Other Nuclear Physics - Experiment Topi, A Muraro, S Battistoni, G Belcari, N Bisogni, M G Camarlinghi, N Del Guerra, A Ferrari, A Kopec, R Kraan, A C Krzempek, D Krzempek, K Morrocchi, M Olko, P Sala, P Sportelli, G Rosso, V Monitoring Proton Therapy Through in-Beam PET: An Experimental Phantom Study |
title | Monitoring Proton Therapy Through in-Beam PET: An Experimental Phantom Study |
title_full | Monitoring Proton Therapy Through in-Beam PET: An Experimental Phantom Study |
title_fullStr | Monitoring Proton Therapy Through in-Beam PET: An Experimental Phantom Study |
title_full_unstemmed | Monitoring Proton Therapy Through in-Beam PET: An Experimental Phantom Study |
title_short | Monitoring Proton Therapy Through in-Beam PET: An Experimental Phantom Study |
title_sort | monitoring proton therapy through in-beam pet: an experimental phantom study |
topic | Other Nuclear Physics - Experiment |
url | https://dx.doi.org/10.1109/trpms.2019.2924036 http://cds.cern.ch/record/2759043 |
work_keys_str_mv | AT topia monitoringprotontherapythroughinbeampetanexperimentalphantomstudy AT muraros monitoringprotontherapythroughinbeampetanexperimentalphantomstudy AT battistonig monitoringprotontherapythroughinbeampetanexperimentalphantomstudy AT belcarin monitoringprotontherapythroughinbeampetanexperimentalphantomstudy AT bisognimg monitoringprotontherapythroughinbeampetanexperimentalphantomstudy AT camarlinghin monitoringprotontherapythroughinbeampetanexperimentalphantomstudy AT delguerraa monitoringprotontherapythroughinbeampetanexperimentalphantomstudy AT ferraria monitoringprotontherapythroughinbeampetanexperimentalphantomstudy AT kopecr monitoringprotontherapythroughinbeampetanexperimentalphantomstudy AT kraanac monitoringprotontherapythroughinbeampetanexperimentalphantomstudy AT krzempekd monitoringprotontherapythroughinbeampetanexperimentalphantomstudy AT krzempekk monitoringprotontherapythroughinbeampetanexperimentalphantomstudy AT morrocchim monitoringprotontherapythroughinbeampetanexperimentalphantomstudy AT olkop monitoringprotontherapythroughinbeampetanexperimentalphantomstudy AT salap monitoringprotontherapythroughinbeampetanexperimentalphantomstudy AT sportellig monitoringprotontherapythroughinbeampetanexperimentalphantomstudy AT rossov monitoringprotontherapythroughinbeampetanexperimentalphantomstudy |