Literature DB >> 25211629

Automation and uncertainty analysis of a method for in-vivo range verification in particle therapy.

K Frey1, D Unholtz, J Bauer, J Debus, C H Min, T Bortfeld, H Paganetti, K Parodi.   

Abstract

We introduce the automation of the range difference calculation deduced from particle-irradiation induced β(+)-activity distributions with the so-called most-likely-shift approach, and evaluate its reliability via the monitoring of algorithm- and patient-specific uncertainty factors. The calculation of the range deviation is based on the minimization of the absolute profile differences in the distal part of two activity depth profiles shifted against each other. Depending on the workflow of positron emission tomography (PET)-based range verification, the two profiles under evaluation can correspond to measured and simulated distributions, or only measured data from different treatment sessions. In comparison to previous work, the proposed approach includes an automated identification of the distal region of interest for each pair of PET depth profiles and under consideration of the planned dose distribution, resulting in the optimal shift distance. Moreover, it introduces an estimate of uncertainty associated to the identified shift, which is then used as weighting factor to 'red flag' problematic large range differences. Furthermore, additional patient-specific uncertainty factors are calculated using available computed tomography (CT) data to support the range analysis. The performance of the new method for in-vivo treatment verification in the clinical routine is investigated with in-room PET images for proton therapy as well as with offline PET images for proton and carbon ion therapy. The comparison between measured PET activity distributions and predictions obtained by Monte Carlo simulations or measurements from previous treatment fractions is performed. For this purpose, a total of 15 patient datasets were analyzed, which were acquired at Massachusetts General Hospital and Heidelberg Ion-Beam Therapy Center with in-room PET and offline PET/CT scanners, respectively. Calculated range differences between the compared activity distributions are reported in a 2D map in beam-eye-view. In comparison to previously proposed approaches, the new most-likely-shift method shows more robust results for assessing in-vivo the range from strongly varying PET distributions caused by differing patient geometry, ion beam species, beam delivery techniques, PET imaging concepts and counting statistics. The additional visualization of the uncertainties and the dedicated weighting strategy contribute to the understanding of the reliability of observed range differences and the complexity in the prediction of activity distributions. The proposed method promises to offer a feasible technique for clinical routine of PET-based range verification.

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Mesh:

Year:  2014        PMID: 25211629     DOI: 10.1088/0031-9155/59/19/5903

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


  12 in total

Review 1.  In vivo range verification in particle therapy.

Authors:  Katia Parodi; Jerimy C Polf
Journal:  Med Phys       Date:  2018-11       Impact factor: 4.071

2.  Technical Design Report for a Carbon-11 Treatment Facility.

Authors:  Liviu Penescu; Thierry Stora; Simon Stegemann; Johanna Pitters; Elisa Fiorina; Ricardo Dos Santos Augusto; Claus Schmitzer; Fredrik Wenander; Katia Parodi; Alfredo Ferrari; Thomas E Cocolios
Journal:  Front Med (Lausanne)       Date:  2022-04-25

Review 3.  Latest developments in in-vivo imaging for proton therapy.

Authors:  Katia Parodi
Journal:  Br J Radiol       Date:  2019-12-12       Impact factor: 3.039

Review 4.  Protons, Photons, and the Prostate - Is There Emerging Evidence in the Ongoing Discussion on Particle Therapy for the Treatment of Prostate Cancer?

Authors:  Kilian C Schiller; Gregor Habl; Stephanie E Combs
Journal:  Front Oncol       Date:  2016-01-28       Impact factor: 6.244

5.  Proton and helium ion radiotherapy for meningioma tumors: a Monte Carlo-based treatment planning comparison.

Authors:  Thomas Tessonnier; Andrea Mairani; Wenjing Chen; Paola Sala; Francesco Cerutti; Alfredo Ferrari; Thomas Haberer; Jürgen Debus; Katia Parodi
Journal:  Radiat Oncol       Date:  2018-01-09       Impact factor: 3.481

6.  Online proton therapy monitoring: clinical test of a Silicon-photodetector-based in-beam PET.

Authors:  Veronica Ferrero; Elisa Fiorina; Matteo Morrocchi; Francesco Pennazio; Guido Baroni; Giuseppe Battistoni; Nicola Belcari; Niccolo' Camarlinghi; Mario Ciocca; Alberto Del Guerra; Marco Donetti; Simona Giordanengo; Giuseppe Giraudo; Vincenzo Patera; Cristiana Peroni; Angelo Rivetti; Manuel Dionisio da Rocha Rolo; Sandro Rossi; Valeria Rosso; Giancarlo Sportelli; Sara Tampellini; Francesca Valvo; Richard Wheadon; Piergiorgio Cerello; Maria Giuseppina Bisogni
Journal:  Sci Rep       Date:  2018-03-06       Impact factor: 4.379

7.  Whole-ventricular irradiation for intracranial germ cell tumors: Dosimetric comparison of pencil beam scanned protons, intensity-modulated radiotherapy and volumetric-modulated arc therapy.

Authors:  Dora Correia; Dario Terribilini; Stefan Zepter; Alessia Pica; Nicola Bizzocchi; Werner Volken; Sonja Stieb; Frank Ahlhelm; Evelyn Herrmann; Michael K Fix; Peter Manser; Daniel M Aebersold; Damien C Weber
Journal:  Clin Transl Radiat Oncol       Date:  2019-01-09

8.  A Comparative Study of Two In Vivo PET Verification Methods in Clinical Cases.

Authors:  Junyu Zhang; Yan Lu; Yinxiangzi Sheng; Weiwei Wang; Zhengshan Hong; Yun Sun; Rong Zhou; Jingyi Cheng
Journal:  Front Oncol       Date:  2021-09-03       Impact factor: 6.244

Review 9.  Range Verification Methods in Particle Therapy: Underlying Physics and Monte Carlo Modeling.

Authors:  Aafke Christine Kraan
Journal:  Front Oncol       Date:  2015-07-07       Impact factor: 6.244

10.  Numerical optimization of targeted delivery of charged nanoparticles to the ostiomeatal complex for treatment of rhinosinusitis.

Authors:  Jinxiang Xi; Jiayao Eddie Yuan; Xiuhua April Si; James Hasbany
Journal:  Int J Nanomedicine       Date:  2015-07-30
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