Literature DB >> 31515011

Dosimetric validation of Monte Carlo and analytical dose engines with raster-scanning 1H, 4He, 12C, and 16O ion-beams using an anthropomorphic phantom.

Stewart Mein1, Benedikt Kopp2, Thomas Tessonnier3, Benjamin Ackermann4, Swantje Ecker4, Julia Bauer4, Kyungdon Choi5, Giulia Aricò6, Alfredo Ferrari6, Thomas Haberer4, Jürgen Debus7, Amir Abdollahi8, Andrea Mairani9.   

Abstract

With high-precision radiotherapy on the rise towards mainstream healthcare, comprehensive validation procedures are essential, especially as more sophisticated technologies emerge. In preparation for the upcoming translation of novel ions, case-/disease-specific ion-beam selection and advanced multi-particle treatment modalities at the Heidelberg Ion-beam Therapy Center (HIT), we quantify the accuracy limits in particle therapy treatment planning under complex heterogeneous conditions for the four ions (1H, 4He, 12C, 16O) using a Monte Carlo Treatment Planning platform (MCTP), an independent GPU-accelerated analytical dose engine developed in-house (FRoG) and the clinical treatment planning system (Syngo RT Planning). Attaching an anthropomorphic half-head Alderson RANDO phantom to entrance window of a dosimetric verification water tank, a cubic target spread-out Bragg peak (SOBP) was optimized using the MCTP to best resolve effects of anatomic heterogeneities on dose homogeneity. Subsequent forward calculations were executed in FRoG and Syngo. Absolute and relative dosimetry was performed in the experimental beam room using 1D and 2D array ionization chamber detectors. Mean absolute percent deviation in dose (|%Δ|) between predictions and PinPoint ionization chamber measurements were within ∼2% for all investigated ions for both MCTP and FRoG. For protons and carbon ions, |%Δ| values were ∼4% for Syngo. For the four ions, 3D-γ analysis (3%/3mm criteria) of FLUKA and FRoG presented mean passing rates of 97.0(±2.4)% and 93.6(±4.2)%. FRoG demonstrated satisfactory agreement with gold standard Monte Carlo simulation and measurement, superior to the commercial system. Our pre-clinical trial landmarks the first measurements taken in anthropomorphic settings for helium, carbon and oxygen ion-beam therapy.
Copyright © 2019 Associazione Italiana di Fisica Medica. Published by Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Anthropomorphic phantom; Dosimetry; GPU; Monte Carlo simulation; Particle therapy; Pencil beam algorithm

Mesh:

Year:  2019        PMID: 31515011     DOI: 10.1016/j.ejmp.2019.07.001

Source DB:  PubMed          Journal:  Phys Med        ISSN: 1120-1797            Impact factor:   2.685


  3 in total

1.  Potential of a Second-Generation Dual-Layer Spectral CT for Dose Calculation in Particle Therapy Treatment Planning.

Authors:  Friderike K Longarino; Antonia Kowalewski; Thomas Tessonnier; Stewart Mein; Benjamin Ackermann; Jürgen Debus; Andrea Mairani; Wolfram Stiller
Journal:  Front Oncol       Date:  2022-04-20       Impact factor: 5.738

2.  Spot-Scanning Hadron Arc (SHArc) Therapy: A Study With Light and Heavy Ions.

Authors:  Stewart Mein; Thomas Tessonnier; Benedikt Kopp; Semi Harrabi; Amir Abdollahi; Jürgen Debus; Thomas Haberer; Andrea Mairani
Journal:  Adv Radiat Oncol       Date:  2021-02-04

3.  How can we consider variable RBE and LETd prediction during clinical practice? A pediatric case report at the Normandy Proton Therapy Centre using an independent dose engine.

Authors:  Stewart Mein; Benedikt Kopp; Anthony Vela; Pauline Dutheil; Paul Lesueur; Dinu Stefan; Jürgen Debus; Thomas Haberer; Amir Abdollahi; Andrea Mairani; Thomas Tessonnier
Journal:  Radiat Oncol       Date:  2022-02-04       Impact factor: 3.481

  3 in total

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