Literature DB >> 12749700

Accelerator-based epithermal neutron sources for boron neutron capture therapy of brain tumors.

Thomas E Blue1, Jacquelyn C Yanch.   

Abstract

This paper reviews the development of low-energy light ion accelerator-based neutron sources (ABNSs) for the treatment of brain tumors through an intact scalp and skull using boron neutron capture therapy (BNCT). A major advantage of an ABNS for BNCT over reactor-based neutron sources is the potential for siting within a hospital. Consequently, light-ion accelerators that are injectors to larger machines in high-energy physics facilities are not considered. An ABNS for BNCT is composed of: (1) the accelerator hardware for producing a high current charged particle beam, (2) an appropriate neutron-producing target and target heat removal system (HRS), and (3) a moderator/reflector assembly to render the flux energy spectrum of neutrons produced in the target suitable for patient irradiation. As a consequence of the efforts of researchers throughout the world, progress has been made on the design, manufacture, and testing of these three major components. Although an ABNS facility has not yet been built that has optimally assembled these three components, the feasibility of clinically useful ABNSs has been clearly established. Both electrostatic and radio frequency linear accelerators of reasonable cost (approximately 1.5 M dollars) appear to be capable of producing charged particle beams, with combinations of accelerated particle energy (a few MeV) and beam currents (approximately 10 mA) that are suitable for a hospital-based ABNS for BNCT. The specific accelerator performance requirements depend upon the charged particle reaction by which neutrons are produced in the target and the clinical requirements for neutron field quality and intensity. The accelerator performance requirements are more demanding for beryllium than for lithium as a target. However, beryllium targets are more easily cooled. The accelerator performance requirements are also more demanding for greater neutron field quality and intensity. Target HRSs that are based on submerged-jet impingement and the use of microchannels have emerged as viable target cooling options. Neutron fields for reactor-based neutron sources provide an obvious basis of comparison for ABNS field quality. This paper compares Monte Carlo calculations of neutron field quality for an ABNS and an idealized standard reactor neutron field (ISRNF). The comparison shows that with lithium as a target, an ABNS can create a neutron field with a field quality that is significantly better (by a factor of approximately 1.2, as judged by the relative biological effectiveness (RBE)-dose that can be delivered to a tumor at a depth of 6cm) than that for the ISRNF. Also, for a beam current of 10 mA, the treatment time is calculated to be reasonable (approximately 30 min) for the boron concentrations that have been assumed.

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Year:  2003        PMID: 12749700     DOI: 10.1007/bf02699931

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


  16 in total

1.  A Monte Carlo dosimetry-based evaluation of the 7Li(p,n)7Be reaction near threshold for accelerator boron neutron capture therapy.

Authors:  C L Lee; X L Zhou; R J Kudchadker; F Harmon; Y D Harker
Journal:  Med Phys       Date:  2000-01       Impact factor: 4.071

2.  What is the best proton energy for accelerator-based BNCT using the 7Li(p,n)7Be reaction?

Authors:  D A Allen; T D Beynon
Journal:  Med Phys       Date:  2000-05       Impact factor: 4.071

3.  Dose distributions in a human head phantom for neutron capture therapy using moderated neutrons from the 2.5 meV proton-7Li reaction or from fission of 235U.

Authors:  K Tanaka; T Kobayashi; Y Sakurai; Y Nakagawa; S Endo; M Hoshi
Journal:  Phys Med Biol       Date:  2001-10       Impact factor: 3.609

4.  Design for an accelerator-based orthogonal epithermal neutron beam for boron neutron capture therapy.

Authors:  D A Allen; T D Beynon; S Green
Journal:  Med Phys       Date:  1999-01       Impact factor: 4.071

5.  A versatile, new accelerator design for boron neutron capture therapy: accelerator design and neutron energy considerations.

Authors:  R E Shefer; R E Klinkowstein; J C Yanch; G L Brownell
Journal:  Basic Life Sci       Date:  1990

6.  Boron neutron capture therapy (BNCT): implications of neutron beam and boron compound characteristics.

Authors:  F J Wheeler; D W Nigg; J Capala; P R Watkins; C Vroegindeweij; I Auterinen; T Seppälä; D Bleuel
Journal:  Med Phys       Date:  1999-07       Impact factor: 4.071

7.  Irradiation characteristics of BNCT using near-threshold 7Li(p, n)7Be direct neutrons: application to intra-operative BNCT for malignant brain tumours.

Authors:  Kenichi Tanaka; Tooru Kobayashi; Yoshinori Sakurai; Yoshinobu Nakagawa; Masayori Ishikawa; Masaharu Hoshi
Journal:  Phys Med Biol       Date:  2002-08-21       Impact factor: 3.609

8.  Development of a high-power water cooled beryllium target for use in accelerator-based boron neutron capture therapy.

Authors:  B W Blackburn; J C Yanch; R E Klinkowstein
Journal:  Med Phys       Date:  1998-10       Impact factor: 4.071

Review 9.  Fission reactor neutron sources for neutron capture therapy--a critical review.

Authors:  Otto K Harling; Kent J Riley
Journal:  J Neurooncol       Date:  2003 Mar-Apr       Impact factor: 4.130

10.  Thick beryllium target as an epithermal neutron source for neutron capture therapy.

Authors:  C K Wang; B R Moore
Journal:  Med Phys       Date:  1994-10       Impact factor: 4.071

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  10 in total

1.  Boron neutron capture therapy for newly diagnosed glioblastoma multiforme: an assessment of clinical potential.

Authors:  K Sköld; T Gorlia; L Pellettieri; V Giusti; B H-Stenstam; J W Hopewell
Journal:  Br J Radiol       Date:  2010-07       Impact factor: 3.039

Review 2.  A critical assessment of boron neutron capture therapy: an overview.

Authors:  Rolf F Barth
Journal:  J Neurooncol       Date:  2003 Mar-Apr       Impact factor: 4.130

3.  Neutron Source Based on Vacuum Insulated Tandem Accelerator and Lithium Target.

Authors:  Sergey Taskaev; Evgenii Berendeev; Marina Bikchurina; Timofey Bykov; Dmitrii Kasatov; Iaroslav Kolesnikov; Alexey Koshkarev; Aleksandr Makarov; Georgii Ostreinov; Vyacheslav Porosev; Sergey Savinov; Ivan Shchudlo; Evgeniia Sokolova; Igor Sorokin; Tatiana Sycheva; Gleb Verkhovod
Journal:  Biology (Basel)       Date:  2021-04-21

4.  Neutron dose estimation via LET spectrometry using CR-39 detector for the reaction (9)Be (p, n).

Authors:  G S Sahoo; S P Tripathy; S Paul; S D Sharma; S C Sharma; D S Joshi; T Bandyopadhyay
Journal:  J Med Phys       Date:  2014-10

5.  Optimization of the photoneutron target geometry for e-accelerator based BNCT.

Authors:  Nahid Chegeni; Saleh Boveiry Pur; Sasan Razmjoo; Seydeh Khadijed Hoseini
Journal:  Electron Physician       Date:  2017-06-25

6.  BNCT induced immunomodulatory effects contribute to mammary tumor inhibition.

Authors:  Aslam Ali Khan; Charlie Maitz; Cai Quanyu; Fred Hawthorne
Journal:  PLoS One       Date:  2019-09-03       Impact factor: 3.240

7.  Dosimetric effect of set-up error in accelerator-based boron neutron capture therapy for head and neck cancer.

Authors:  Shinya Komori; Katsumi Hirose; Mariko Sato; Akihiko Takeuchi; Ryohei Kato; Tomoaki Motoyanagi; Takaomi Harada; Yuhei Yamazaki; Mayumi Harada; Yuki Narita; Takahiro Kato; Yoshihiro Takai
Journal:  J Radiat Res       Date:  2022-07-19       Impact factor: 2.438

8.  The Anti-Tumor Effect of Boron Neutron Capture Therapy in Glioblastoma Subcutaneous Xenograft Model Using the Proton Linear Accelerator-Based BNCT System in Korea.

Authors:  Il Hyeok Seo; Jeongwoo Lee; Dasom Na; Hyunhye Kyung; Jieun Yang; Sangbong Lee; Sang June Jeon; Jae Won Choi; Kyu Young Lee; Jungyu Yi; Jaehwan Han; Mooyoung Yoo; Se Hyun Kim
Journal:  Life (Basel)       Date:  2022-08-19

9.  Facility optimization to improve activation rate distributions during IVNAA.

Authors:  Atiyeh Ebrahimi Khankook; Laleh Rafat Motavalli; Hashem Miri Hakimabad
Journal:  J Radiat Res       Date:  2013-02-05       Impact factor: 2.724

Review 10.  Current status of boron neutron capture therapy of high grade gliomas and recurrent head and neck cancer.

Authors:  Rolf F Barth; M Graca H Vicente; Otto K Harling; W S Kiger; Kent J Riley; Peter J Binns; Franz M Wagner; Minoru Suzuki; Teruhito Aihara; Itsuro Kato; Shinji Kawabata
Journal:  Radiat Oncol       Date:  2012-08-29       Impact factor: 3.481

  10 in total

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