TH-CD-209-02: Beam Angle Optimization Incorporating Anatomical Heterogeneities for Pencil Beam Scanning Charged-Particle Therapy

2016 ◽  
Vol 43 (6Part46) ◽  
pp. 3886-3886
Author(s):  
C Toramatsu ◽  
T Inaniwa
2020 ◽  
Vol 10 (1) ◽  
Author(s):  
Giovanni Fattori ◽  
Ye Zhang ◽  
David Meer ◽  
Damien Charles Weber ◽  
Antony John Lomax ◽  
...  

Abstract Tumour tracking is an advanced radiotherapy technique for precise treatment of tumours subject to organ motion. In this work, we addressed crucial aspects of dose delivery for its realisation in pencil beam scanning proton therapy, exploring the momentum acceptance and global achromaticity of a Gantry beamline to perform continuous energy regulation with a standard upstream degrader. This novel approach is validated on simulation data from three geometric phantoms of increasing complexity and one liver cancer patient using 4D dose calculations. Results from a standard high-to-low beamline ramping scheme were compared to alternative energy meandering schemes including combinations with rescanning. Target coverage and dose conformity were generally well recovered with tumour tracking even though for particularly small targets, large variations are reported for the different approaches. Meandering in energy while rescanning has a positive impact on target homogeneity and similarly, hot spots outside the targets are mitigated with a relatively fast convergence rate for most tracking scenarios, halving the volume of hot spots after as little as 3 rescans. This work investigates the yet unexplored potential of having a large momentum acceptance in medical beam line, and provides an alternative to take tumour tracking with particle therapy closer to clinical translation.


2017 ◽  
Vol 56 (6) ◽  
pp. 853-859 ◽  
Author(s):  
Jenny Gorgisyan ◽  
Rosalind Perrin ◽  
Antony J. Lomax ◽  
Gitte F. Persson ◽  
Mirjana Josipovic ◽  
...  

2021 ◽  
Vol 12 (1) ◽  
pp. 328
Author(s):  
Linh T. Tran ◽  
David Bolst ◽  
Benjamin James ◽  
Vladimir Pan ◽  
James Vohradsky ◽  
...  

The Centre for Medical Radiation Physics introduced the concept of Silicon On Insulator (SOI) microdosimeters with 3-Dimensional (3D) cylindrical sensitive volumes (SVs) mimicking the dimensions of cells in an array. Several designs of high-definition 3D SVs fabricated using 3D MEMS technology were implemented. 3D SVs were fabricated in different sizes and configurations with diameters between 18 and 30 µm, thicknesses of 2–50 µm and at a pitch of 50 µm in matrices with volumes of 20 × 20 and 50 × 50. SVs were segmented into sub-arrays to reduce capacitance and avoid pile up in high-dose rate pencil beam scanning applications. Detailed TCAD simulations and charge collection studies in individual SVs have been performed. The microdosimetry probe (MicroPlus) is composed of the silicon microdosimeter and low-noise front–end readout electronics housed in a PMMA waterproof sheath that allows measurements of lineal energies as low as 0.4 keV/µm in water or PMMA. Microdosimetric quantities measured with SOI microdosimeters and the MicroPlus probe were used to evaluate the relative biological effectiveness (RBE) of heavy ions and protons delivered by pencil-beam scanning and passive scattering systems in different particle therapy centres. The 3D detectors and MicroPlus probe developed for microdosimetry have the potential to provide confidence in the delivery of RBE optimized particle therapy when introduced into routine clinical practice.


2021 ◽  
Vol 32 (6) ◽  
Author(s):  
Meng-Ya Guo ◽  
Xiu-Fang Li ◽  
Jie Wang ◽  
Qi Liu ◽  
Xiu-Zhen Deng ◽  
...  

2021 ◽  
Author(s):  
Konrad P. Nesteruk ◽  
Michele Togno ◽  
Martin Grossmann ◽  
Anthony J. Lomax ◽  
Damien C. Weber ◽  
...  

2021 ◽  
Vol 82 ◽  
pp. 134-143
Author(s):  
M. De Saint-Hubert ◽  
C. De Angelis ◽  
Ž. Knežević ◽  
B. Michalec ◽  
B. Reniers ◽  
...  

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