Literature DB >> 33202399

Out-of-field doses for scanning proton radiotherapy of shallowly located paediatric tumours-a comparison of range shifter and 3D printed compensator.

A Wochnik1, L Stolarczyk1,2,3, I Ambrožová4, M Davídková4, M De Saint-Hubert5, S Domański6, C Domingo7, Ž Knežević8, R Kopeć1, M Kuć6, M Majer8, N Mojżeszek1, V Mares9, I Martínez-Rovira7, M Á Caballero-Pacheco7, E Pyszka1, J Swakoń1, S Trinkl9,10, M Tisi9, R Harrison11, P Olko1.   

Abstract

The lowest possible energy of proton scanning beam in cyclotron proton therapy facilities is typically between 60 and 100 MeV. Treatment of superficial lesions requires a pre-absorber to deliver doses to shallower volumes. In most of the cases a range shifter (RS) is used, but as an alternative solution, a patient-specific 3D printed proton beam compensator (BC) can be applied. A BC enables further reduction of the air gap and consequently reduction of beam scattering. Such pre-absorbers are additional sources of secondary radiation. The aim of this work was the comparison of RS and BC with respect to out-of-field doses for a simulated treatment of superficial paediatric brain tumours. EURADOS WG9 performed comparative measurements of scattered radiation in the Proteus C-235 IBA facility (Cyclotron Centre Bronowice at the Institute of Nuclear Physics, CCB IFJ PAN, Kraków, Poland) using two anthropomorphic phantoms-5 and 10 yr old-for a superficial target in the brain. Both active detectors located inside the therapy room, and passive detectors placed inside the phantoms were used. Measurements were supplemented by Monte Carlo simulation of the radiation transport. For the applied 3D printed pre-absorbers, out-of-field doses from both secondary photons and neutrons were lower than for RS. Measurements with active environmental dosimeters at five positions inside the therapy room indicated that the RS/BC ratio of the out-of-field dose was also higher than one, with a maximum of 1.7. Photon dose inside phantoms leads to higher out-of-field doses for RS than BC to almost all organs with the highest RS/BC ratio 12.5 and 13.2 for breasts for 5 and 10 yr old phantoms, respectively. For organs closest to the isocentre such as the thyroid, neutron doses were lower for BC than RS due to neutrons moderation in the target volume, but for more distant organs like bladder-conversely-lower doses for RS than BC were observed. The use of 3D printed BC as the pre-absorber placed in the near vicinity of patient in the treatment of superficial tumours does not result in the increase of secondary radiation compared to the treatment with RS, placed far from the patient.

Entities:  

Year:  2021        PMID: 33202399     DOI: 10.1088/1361-6560/abcb1f

Source DB:  PubMed          Journal:  Phys Med Biol        ISSN: 0031-9155            Impact factor:   3.609


  5 in total

1.  Validation of a Monte Carlo Framework for Out-of-Field Dose Calculations in Proton Therapy.

Authors:  Marijke De Saint-Hubert; Nico Verbeek; Christian Bäumer; Johannes Esser; Jörg Wulff; Racell Nabha; Olivier Van Hoey; Jérémie Dabin; Florian Stuckmann; Fabiano Vasi; Stephan Radonic; Guillaume Boissonnat; Uwe Schneider; Miguel Rodriguez; Beate Timmermann; Isabelle Thierry-Chef; Lorenzo Brualla
Journal:  Front Oncol       Date:  2022-06-08       Impact factor: 5.738

Review 2.  Determining Out-of-Field Doses and Second Cancer Risk From Proton Therapy in Young Patients-An Overview.

Authors:  Maite Romero-Expósito; Iuliana Toma-Dasu; Alexandru Dasu
Journal:  Front Oncol       Date:  2022-05-31       Impact factor: 5.738

3.  DNA damage response of haematopoietic stem and progenitor cells to high-LET neutron irradiation.

Authors:  Monique Engelbrecht; Roya Ndimba; Maryna de Kock; Xanthene Miles; Shankari Nair; Randall Fisher; Peter du Plessis; Julie Bolcaen; Matthys Hendrik Botha; Elbie Zwanepoel; Simon Sioen; Ans Baeyens; Jaime Nieto-Camero; Evan de Kock; Charlot Vandevoorde
Journal:  Sci Rep       Date:  2021-10-21       Impact factor: 4.379

4.  Range-shifter effects on the stray field in proton therapy measured with the variance-covariance method.

Authors:  Linda Eliasson; Jan Lillhök; Torbjörn Bäck; Robert Billnert-Maróti; Alexandru Dasu; Malgorzata Liszka
Journal:  Front Oncol       Date:  2022-08-02       Impact factor: 5.738

5.  Neutron Radiation Dose Measurements in a Scanning Proton Therapy Room: Can Parents Remain Near Their Children During Treatment?

Authors:  Vladimir Mares; Jad Farah; Marijke De Saint-Hubert; Szymon Domański; Carles Domingo; Martin Dommert; Magdalena Kłodowska; Katarzyna Krzempek; Michał Kuć; Immaculada Martínez-Rovira; Edyta Michaś; Natalia Mojżeszek; Łukasz Murawski; Ondrej Ploc; Maite Romero-Expósito; Marco Tisi; François Trompier; Olivier Van Hoey; Laurent Van Ryckeghem; Marek Wielunski; Roger M Harrison; Liliana Stolarczyk; Pawel Olko
Journal:  Front Oncol       Date:  2022-07-14       Impact factor: 5.738

  5 in total

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