Literature DB >> 10222419

Boron neutron capture enhancement (BNCE) of fast neutron irradiation for glioblastoma: increase of thermal neutron flux with heavy material collimation, a theoretical evaluation.

P Paquis1, J P Pignol, M Lonjon, N Brassart, A Courdi, P Chauvel, P Grellier, M Chatel.   

Abstract

Despite the fact that fast neutron irradiation of glioblastoma has shown on autopsies an ability to sterilize tumors, no therapeutic windows have been found for these particles due to their toxicity toward normal brain. Therefore, the Boron Neutron Capture Enhancement (BNCE) of fast neutron beam has been suggested. This paper addresses the problem of fast neutron beam collimation, which induces a dramatic decrease of the thermal neutron flux in the depth of the tissues when smaller irradiation fields are used. Thermoluminescent dosimeter TLD-600 and TLD-700 were used to determine the thermal neutron flux within a Plexiglas phantom irradiated under the Nice Biomedical Cyclotron p(60)+Be(32) fast neutron beam. A BNCE of 4.6% in physical dose was determined for a 10 x 10 cm2 field, and of 10.4% for a 20 x 20 cm2 one. A Dose Modification Factor of 1.19 was calculated for CAL 58 glioblastoma cells irradiated thanks to the larger field. In order to increase the thermal flux in depth while shaping the beam, heavy material collimation was studied with Monte Carlo simulations using coupled FLUKA and MCNP-4A codes. The use of 20 cm width lead blocks allowed a 2 fold thermal neutron flux increase in the depth of the phantom, while shielding the fast neutron beam with a fast neutron dose transmission of 23%. Using the DMF of 1.19, a BNCE of 40% was calculated in the beam axis. This enhancement might be sufficient to open, at least theoretically, a therapeutic window.

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Year:  1999        PMID: 10222419     DOI: 10.1023/a:1006115404262

Source DB:  PubMed          Journal:  J Neurooncol        ISSN: 0167-594X            Impact factor:   4.130


  34 in total

1.  Fast neutron and mixed (neutron/photon) beam teletherapy for grades III and IV astrocytomas.

Authors:  G E Laramore; T W Griffin; A J Gerdes; R G Parker
Journal:  Cancer       Date:  1978-07       Impact factor: 6.860

2.  Accumulation of boron in malignant and normal cells incubated in vitro with boronophenylalanine, mercaptoborane or boric acid.

Authors:  J Capala; M S Makar; J A Coderre
Journal:  Radiat Res       Date:  1996-11       Impact factor: 2.841

3.  Boron neutron capture therapy of brain tumors: enhanced survival following intracarotid injection of either sodium borocaptate or boronophenylalanine with or without blood-brain barrier disruption.

Authors:  R F Barth; W Yang; J H Rotaru; M L Moeschberger; D D Joel; M M Nawrocky; J H Goodman; A H Soloway
Journal:  Cancer Res       Date:  1997-03-15       Impact factor: 12.701

4.  Enhanced survival of glioma bearing rats following boron neutron capture therapy with blood-brain barrier disruption and intracarotid injection of boronophenylalanine.

Authors:  W Yang; R F Barth; J H Rotaru; M L Moeschberger; D D Joel; M M Nawrocky; J H Goodman
Journal:  J Neurooncol       Date:  1997-05       Impact factor: 4.130

5.  Boron neutron capture irradiation: setting up a clinical programme in Nice.

Authors:  J P Pignol; P Chauvel; P Paquis; A Courdi; N Iborra-Brassart; M Lonjon; C Lebrun-Frenay; M Frenay; P Grellier; M Chatel; J Hérault; R J Bensadoun; G Milano; F Nepveu; J P Patau; F Demard; N Breteau
Journal:  Bull Cancer Radiother       Date:  1996

6.  Concomitant boron-neutron capture therapy during fast-neutron irradiation of a rat glioma.

Authors:  T A Buchholz; J S Rasey; G E Laramore; J C Livesey; L Chin; R Risler; D K Hamlin; A M Spence; T W Griffin
Journal:  Radiology       Date:  1994-06       Impact factor: 11.105

7.  Enhancement of fast neutron beams with boron neutron capture therapy. A mechanism for achieving a selective, concomitant tumor boost.

Authors:  T A Buchholz; G E Laramore; P Wootton; J C Livesey; D S Wilbur; R Risler; M Phillips; J Jacky; T W Griffin
Journal:  Acta Oncol       Date:  1994       Impact factor: 4.089

8.  Randomized neutron dose searching study for malignant gliomas of the brain: results of an RTOG study. Radiation Therapy Oncology Group.

Authors:  G E Laramore; M Diener-West; T W Griffin; J S Nelson; M L Griem; F J Thomas; F R Hendrickson; B R Griffin; L C Myrianthopoulos; J Saxton
Journal:  Int J Radiat Oncol Biol Phys       Date:  1988-06       Impact factor: 7.038

9.  The RBE of fast neutrons for in vitro inactivation of human tumour cells determined by the ratio of mean inactivation doses.

Authors:  A Courdi; N Brassart; J Herault; D Mari; P Chauvel
Journal:  Acta Oncol       Date:  1996       Impact factor: 4.089

10.  Radiation Therapy Oncology Group (RTOG) survival data on anaplastic astrocytomas of the brain: does a more aggressive form of treatment adversely impact survival?

Authors:  G E Laramore; K L Martz; J S Nelson; T W Griffin; C H Chang; J Horton
Journal:  Int J Radiat Oncol Biol Phys       Date:  1989-12       Impact factor: 7.038

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