Javascript must be enabled to continue!
Design and dosimetric characterization of a transportable proton minibeam collimation system
View through CrossRef
BackgroundProton Minibeam Radiation Therapy has shown to widen the therapeutic window compared to conventional radiation treatment in pre-clinical studies. The underlying biological mechanisms, however, require more research.PurposeThe purpose of this study was to develop and characterize a mechanical collimation setup capable of producing 250µm wide proton minibeams with a center-to-center distance of 1000µm.MethodsTo find the optimal arrangement Monte Carlo simulations were employed using the Geant4 toolkit TOPAS to maximize key parameters such as the peak-to-valley dose ratio (PVDR) and the valley dose rate. The experimental characterization of the optimized setup was carried out with film dosimetry at the University Proton Therapy beamline in Dresden and the proton beamline of the University of Washington Medical Center in Seattle with 150MeV and 50.5MeV, respectively. A microDiamond detector (PTW, Freiburg, Germany) was utilized at both beamlines for online proton minibeam dosimetry.ResultsA PVDR of 10 was achieved in Dresden and a PVDR of 14 in Seattle. Dosimetry measurements were carried out with EBT3 films at a depth of 5mm in a polymethylmethacrylate (PMMA) phantom. When comparing film dosimetry with the microDiamond, excellent agreement was observed in the valleys. However, the peak dose showed a discrepancy of approximately 10% in the 150MeV beam and 20% in the 50.5MeV beam between film and microDiamond.DiscussionThe characteristics of the minibeams generated with our system compares well with those of other collimated minibeams despite being smaller. The deviations of microDiamond measurements from film readings might be subject to the diamond detector responding differently in the peak and valley regions. Applying previously reported correction factors aligns the dose profile measured by the microDiamond with the profile acquired with EBT3 films in Dresden.ConclusionThe novel proton minibeam system can be operated independently of specific beamlines. It can be transported easily and hence used for inter-institutional comparative studies. The quality of the minibeams allows us to perform in vitro and in vivo experiments in the future. The microDiamond was demonstrated to have great potential for online dosimetry for proton minibeams, yet requires more research to explain the observed discrepancies.
Title: Design and dosimetric characterization of a transportable proton minibeam collimation system
Description:
BackgroundProton Minibeam Radiation Therapy has shown to widen the therapeutic window compared to conventional radiation treatment in pre-clinical studies.
The underlying biological mechanisms, however, require more research.
PurposeThe purpose of this study was to develop and characterize a mechanical collimation setup capable of producing 250µm wide proton minibeams with a center-to-center distance of 1000µm.
MethodsTo find the optimal arrangement Monte Carlo simulations were employed using the Geant4 toolkit TOPAS to maximize key parameters such as the peak-to-valley dose ratio (PVDR) and the valley dose rate.
The experimental characterization of the optimized setup was carried out with film dosimetry at the University Proton Therapy beamline in Dresden and the proton beamline of the University of Washington Medical Center in Seattle with 150MeV and 50.
5MeV, respectively.
A microDiamond detector (PTW, Freiburg, Germany) was utilized at both beamlines for online proton minibeam dosimetry.
ResultsA PVDR of 10 was achieved in Dresden and a PVDR of 14 in Seattle.
Dosimetry measurements were carried out with EBT3 films at a depth of 5mm in a polymethylmethacrylate (PMMA) phantom.
When comparing film dosimetry with the microDiamond, excellent agreement was observed in the valleys.
However, the peak dose showed a discrepancy of approximately 10% in the 150MeV beam and 20% in the 50.
5MeV beam between film and microDiamond.
DiscussionThe characteristics of the minibeams generated with our system compares well with those of other collimated minibeams despite being smaller.
The deviations of microDiamond measurements from film readings might be subject to the diamond detector responding differently in the peak and valley regions.
Applying previously reported correction factors aligns the dose profile measured by the microDiamond with the profile acquired with EBT3 films in Dresden.
ConclusionThe novel proton minibeam system can be operated independently of specific beamlines.
It can be transported easily and hence used for inter-institutional comparative studies.
The quality of the minibeams allows us to perform in vitro and in vivo experiments in the future.
The microDiamond was demonstrated to have great potential for online dosimetry for proton minibeams, yet requires more research to explain the observed discrepancies.
Related Results
Computer simulation of an excess proton in aqueous systems
Computer simulation of an excess proton in aqueous systems
This thesis aims at studying the microscopic physical-chemical properties of an excess proton in aqueous systems. From bulk water environments to narrow hydrophobic channels constr...
Characterization of EBT3 radiochromic films for dosimetry of proton beams in the presence of magnetic fields
Characterization of EBT3 radiochromic films for dosimetry of proton beams in the presence of magnetic fields
PurposeRadiochromic film dosimetry is extensively used for quality assurance in photon and proton beam therapy. So far, GafchromicTM EBT3 film appears as a strong candidate to be u...
Optimizing the deliverability of binary collimation‐based SRS treatment for multiple metastases with multiple prescriptions
Optimizing the deliverability of binary collimation‐based SRS treatment for multiple metastases with multiple prescriptions
Abstract
intra‐arc binary collimation (iABC) is a novel treatment technique in which dynamic conformal arcs are periodically interrupted with binary collimation. ...
Study on Dosimetry Technology of Absorbed Dose to Water for Proton
Study on Dosimetry Technology of Absorbed Dose to Water for Proton
In proton therapy, precise energy transfer to tissues is crucial for cancer treatment, as accurate dose delivery directly influences tumor control efficiency and minimizes radiatio...
Adaptive Radiotherapy (ART) versus Non-Adaptive IMRT for Locoregionally Advanced Nasopharyngeal Carcinoma: A Meta-Analysis of Dosimetric Advantages, Clinical Outcomes, and Organ-at-Risk Sparing
Adaptive Radiotherapy (ART) versus Non-Adaptive IMRT for Locoregionally Advanced Nasopharyngeal Carcinoma: A Meta-Analysis of Dosimetric Advantages, Clinical Outcomes, and Organ-at-Risk Sparing
Background: Intensity-modulated radiotherapy (IMRT) is the cornerstone of treatment for nasopharyngeal carcinoma (NPC), offering high dose conformity. However, anatomical variation...
Unraveling the mechanism of proton translocation in the extracellular half-channel of bacteriorhodopsin
Unraveling the mechanism of proton translocation in the extracellular half-channel of bacteriorhodopsin
AbstractBacteriorhodopsin, a light activated protein that creates a proton gradient in halobacteria, has long served as a simple model of proton pumps. Within bacteriorhodopsin, se...
List-mode proton CT reconstruction
List-mode proton CT reconstruction
Reconstruction tomographique proton CT en mode liste
La thérapie proton est utilisée dans le cadre du traitement contre le cancer afin de parvenir à une meilleure d...

