Literature DB >> 28406796

Experimental dosimetric comparison of 1H, 4He, 12C and 16O scanned ion beams.

T Tessonnier1, A Mairani, S Brons, T Haberer, J Debus, K Parodi.   

Abstract

At the Heidelberg Ion Beam Therapy Center, scanned helium and oxygen ion beams are available in addition to the clinically used protons and carbon ions for physical and biological experiments. In this work, a study of the basic dosimetric features of the different ions is performed in the entire therapeutic energy range. Depth dose distributions are investigated for pencil-like beam irradiation, with and without a modulating ripple filter, focusing on the extraction of key Bragg curve parameters, such as the range, the peak-width and the distal 80%-20% fall-off. Pencil-beam lateral profiles are measured at different depths in water, and parameterized with multiple Gaussian functions. A more complex situation of an extended treatment field is analyzed through a physically optimized spread-out Bragg peak, delivered with beam scanning. The experimental results of this physical beam characterization indicate that helium ions could afford a more conformal treatment and in turn, increased tumor control. This is mainly due to a smaller lateral scattering than with protons, leading to better lateral and distal fall-off, as well as a lower fragmentation tail compared to carbon and oxygen ions. Moreover, the dosimetric dataset can be used directly for comparison with results from analytical dose engines or Monte Carlo codes. Specifically, it was used at the Heidelberg Ion Beam Therapy Center to generate a new input database for a research analytical treatment planning system, as well as for validation of a general purpose Monte Carlo program, in order to lay the groundwork for biological experiments and further patient planning studies.

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Year:  2017        PMID: 28406796     DOI: 10.1088/1361-6560/aa6516

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


  6 in total

Review 1.  Particle Radiation Induced Neurotoxicity in the Central Nervous System.

Authors:  David R Grosshans; Joseph G Duman; M Waleed Gaber; Gabriel Sawakuchi
Journal:  Int J Part Ther       Date:  2018-09-21

2.  Bevacizumab is an effective treatment for symptomatic cerebral necrosis after carbon ion therapy for recurrent intracranial malignant tumours: A case report.

Authors:  Ruifeng Liu; Hongtao Luo; Qiuning Zhang; Shilong Sun; Zhiqiang Liu; Xiaohu Wang; Yichao Geng; Xueshan Zhao
Journal:  Mol Clin Oncol       Date:  2022-05-19

3.  Benchmarking of PHITS for Carbon Ion Therapy.

Authors:  Monika Puchalska; Thomas Tessonnier; Katia Parodi; Lembit Sihver
Journal:  Int J Part Ther       Date:  2018-03-21

4.  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

5.  Fast robust dose calculation on GPU for high-precision 1H, 4He, 12C and 16O ion therapy: the FRoG platform.

Authors:  Stewart Mein; Kyungdon Choi; Benedikt Kopp; Thomas Tessonnier; Julia Bauer; Alfredo Ferrari; Thomas Haberer; Jürgen Debus; Amir Abdollahi; Andrea Mairani
Journal:  Sci Rep       Date:  2018-10-04       Impact factor: 4.379

6.  Characterization of the Mixed Radiation Field Produced by Carbon and Oxygen Ion Beams of Therapeutic Energy: A Monte Carlo Simulation Study.

Authors:  C K Ying; David Bolst; Anatoly Rosenfeld; Susanna Guatelli
Journal:  J Med Phys       Date:  2019-12-11
  6 in total

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