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Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms
Volume 213, January 2004, Pages 637-640
5th Topical Meeting on Industrial Radiation and Radioisotope Measurement Applications
 
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doi:10.1016/S0168-583X(03)01668-9    How to Cite or Link Using DOI (Opens New Window)
Copyright © 2003 Elsevier B.V. All rights reserved.

Development of a treatment planning system for BNCT based on positron emission tomography data: preliminary results

N. CerulloCorresponding Author Contact Information, E-mail The Corresponding Author, a, b, G. G. Daquinoa, c, L. Muzia and J. Espositod

a DIMNP, University of Pisa, Via Diotisalvi 2, 56126, Pisa, Italy b DITEC, University of Genova, Genova, Italy c JRC Petten, European Commission, Petten, The Netherlands d Italian National Institute of Nuclear Physics, Legnaro National Laboratory, Legnaro, Italy

Available online 20 June 2003.

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Abstract

Present standard treatment planning (TP) for glioblastoma multiforme (GBM – a kind of brain tumor), used in all boron neutron capture therapy (BNCT) trials, requires the construction (based on CT and/or MRI images) of a 3D model of the patient head, in which several regions, corresponding to different anatomical structures, are identified. The model is then employed by a computer code to simulate radiation transport in human tissues. The assumption is always made that considering a single value of boron concentration for each specific region will not lead to significant errors in dose computation. The concentration values are estimated “indirectly”, on the basis of previous experience and blood sample analysis.

This paper describes an original approach, with the introduction of data on the in vivo boron distribution, acquired by a positron emission tomography (PET) scan after labeling the BPA (borono-phenylalanine) with the positron emitter 18F. The feasibility of this approach was first tested with good results using the code CARONTE. Now a complete TPS is under development. The main features of the first version of this code are described and the results of a preliminary study are presented. Significant differences in dose computation arise when the two different approaches (“standard” and “PET-based”) are applied to the TP of the same GBM case.

Author Keywords: Boron neutron capture therapy (BNCT); Treatment planning system; Heterogeneous boron distribution; Boron dose distribution; Positron emission tomography (PET); MCNP

PACS classification codes: 87.53.T; 87.59.V; 07.05.T; 87.53.P,Q

Article Outline

1. Introduction
2. Materials and methods
3. Results and discussion
4. Conclusions
Acknowledgements
References



Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms
Volume 213, January 2004, Pages 637-640
5th Topical Meeting on Industrial Radiation and Radioisotope Measurement Applications
 
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