研究目的
To develop and benchmark a precise patient alignment protocol for microbeam radiation therapy (MRT) at the ESRF biomedical beamline ID17, enabling conformal image-guided irradiations for veterinary trials on large animals with deep-seated tumors.
研究成果
The ESRF biomedical beamline ID17 is technically prepared for conformal image-guided MRT in veterinary trials, achieving alignment errors below 2 mm. Improvements in marker size and protocol can enhance precision to below 1 mm. Imaging doses are comparable to human reference levels, and online dose monitoring is reliable. Future work should focus on protocol refinement and clinical application.
研究不足
The precision is limited by marker size and placement accuracy, CT resolution, and beam inhomogeneity. The protocol requires further optimization for smaller markers and reduced imaging dose. Vibrations in the conformal mask setup affected irradiation quality.
1:Experimental Design and Method Selection:
The study involved developing an alignment protocol using fiducial markers and x-ray projection imaging to verify patient positioning before MRT irradiation. Theoretical models included Horn's method for 3D orientation and XOP software for beam spectrum prediction.
2:Sample Selection and Data Sources:
An anthropomorphic head phantom (Model 605, CIRS) was used for benchmarking, with CT images acquired from AOI and CHU Grenoble facilities.
3:List of Experimental Equipment and Materials:
Equipment included a κ-type goniometer, Frelon CCD camera, PTW Semiflex 31010 and Radcal 10X6-6 ionization chambers, radiochromic films (Gafchromic MD-V2-55), and fiducial markers (lead and titanium). Materials involved PMMA cubes and beam attenuators like Al, Cu, and krypton gas.
4:Experimental Procedures and Operational Workflow:
The phantom was placed on the goniometer, projection images were taken from different angles, markers were identified, and a coordinate transform was applied for alignment. Irradiations were performed with microbeams, and dose measurements were conducted using scanning techniques.
5:Data Analysis Methods:
Data were analyzed using Python with NumPy for orientation calculations, ImageJ for film analysis, and XOP for spectrum modeling. Statistical comparisons included linear fits and error propagation.
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κ-type goniometer
Not specified
HUBER Diffraktionstechnik GmbH & Co. KG
High-precision sample stage for positioning and rotating samples during irradiation and imaging.
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Frelon CCD camera
Not specified
Not specified
X-ray imaging detector for acquiring projection images during alignment and verification.
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PTW Semiflex ionization chamber
31010
PTW
Dosimetry detector for measuring air kerma and dose during imaging and irradiation.
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Radcal ionization chamber
10X6-6
Radcal
Dosimetry detector for measuring air kerma during imaging.
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Radiochromic film
Gafchromic MD-V2-55
Gafchromic
Dosimetry and verification of irradiated fields by measuring dose distribution.
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Bragg peak chamber
34070
PTW
Online beam monitoring during irradiation.
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Multislit collimator
MSC
Not specified
Splits x-ray beam into microbeams for MRT irradiation.
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Ionization chamber
IC0 and IC0bis
Not specified
Online monitoring of incident x-ray beam intensity.
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Scanner
Perfection V750 PRO
EPSON
Digitalization of radiochromic films for dose analysis.
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