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

被引:0
|
作者
Blue, TE
Yanch, JC
机构
[1] Ohio State Univ, Dept Mech Engn, Nucl Engn Program, Columbus, OH 43210 USA
[2] MIT, Dept Nucl Engn, Cambridge, MA 02139 USA
[3] MIT, Whitaker Coll Hlth Sci & Technol, Cambridge, MA 02139 USA
关键词
accelerator; neutron; sources; BNCT;
D O I
暂无
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
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 (similar to $ 1.5 M) appear to be capable of producing charged particle beams, with combinations of accelerated particle energy ( a few MeV) and beam currents (similar to 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 similar to 1.2, as judged by the relative biological effectiveness ( RBE)- dose that can be delivered to a tumor at a depth of 6 cm) than that for the ISRNF. Also, for a beam current of 10 mA, the treatment time is calculated to be reasonable (similar to 30 min) for the boron concentrations that have been assumed.
引用
收藏
页码:19 / 31
页数:13
相关论文
共 50 条
  • [41] Accelerator-based neutron source for the neutron-capture and fast neutron therapy at hospital
    Bayanov, BF
    Belov, VP
    Bender, ED
    Bokhovko, MV
    Dimov, GI
    Kononov, VN
    Kononov, OE
    Kuksanov, NK
    Palchikov, VE
    Pivovarov, VA
    Salimov, RA
    Silvestrov, GI
    Skrinsky, AN
    Soloviov, NA
    Taskaev, SY
    NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 1998, 413 (2-3): : 397 - 426
  • [42] Boron neutron capture therapy for brain tumors
    Yamamoto, Tetsuya
    Tsuboi, Koji
    Nakai, Kei
    Kumada, Hiroaki
    Sakurai, Hideyuki
    Matsumura, Akira
    TRANSLATIONAL CANCER RESEARCH, 2013, 2 (02) : 80 - 86
  • [43] Development and construction of a neutron beam line for accelerator-based boron neutron capture synovectomy
    Gierga, DP
    Yanch, JC
    Shefer, RE
    MEDICAL PHYSICS, 2000, 27 (01) : 203 - 214
  • [44] Implications of radiation microdosimetry for accelerator-based boron neutron capture therapy: a radiobiological perspective
    Fukunaga, Hisanori
    Matsuya, Yusuke
    Tokuuye, Koichi
    Omura, Motoko
    BRITISH JOURNAL OF RADIOLOGY, 2020, 93 (1111):
  • [45] Failure modes and effects analysis study for accelerator-based Boron Neutron Capture Therapy
    Takemori, Mihiro
    Nakamura, Satoshi
    Sofue, Toshimitsu
    Ito, Mikiko
    Goka, Tomonori
    Miura, Yuki
    Iijima, Kotaro
    Chiba, Takahito
    Nakayama, Hiroki
    Nakaichi, Tetsu
    Mikasa, Shohei
    Takano, Yuki
    Kon, Mitsuhiro
    Shuto, Yasunori
    Urago, Yuka
    Nishitani, Masato
    Kashihara, Tairo
    Takahashi, Kana
    Murakami, Naoya
    Nishio, Teiji
    Okamoto, Hiroyuki
    Chang, Weishan
    Igaki, Hiroshi
    MEDICAL PHYSICS, 2023, 50 (01) : 424 - 439
  • [46] Study of the out-of-field dose from an accelerator-based neutron source for boron neutron capture therapy
    Verdera, Antonia
    Torres-Sanchez, Pablo
    Praena, Javier
    Porras, Ignacio
    APPLIED RADIATION AND ISOTOPES, 2024, 212
  • [47] Study of epithermal neutron columns for boron neutron capture therapy
    Oka, Y
    Akiyama, M
    An, S
    PROGRESS IN NUCLEAR ENERGY, 1998, 32 (1-2) : 61 - 70
  • [48] Accelerator-based neutron sources for BNCT
    Capoulat, Maria Eugenia
    Cartelli, Daniel
    Baldo, Matias
    Sandin, Juan Carlos Suarez
    Igarzabal, Marcelo
    Conti, Guillermo
    del Grosso, Mariela F.
    Bertolo, Alma
    Gaviola, Pedro
    Gun, Marcelo
    Valda, Alejandro
    Sala, Facundo
    Incicco, Sebastian
    Erhardt, Julian
    Kreiner, Andres J.
    HEALTH AND TECHNOLOGY, 2024, 14 (05) : 1007 - 1015
  • [49] Proton accelerator-based epithermal neutron beams for BNCT
    Palamara, F
    Mattioda, F
    Varone, R
    Giusti, V
    RESEARCH AND DEVELOPMENT IN NEUTRON CAPTURE THERAPY, 2002, : 283 - 288
  • [50] The accelerator neutron source for boron neutron capture therapy
    Kasatov, D.
    Koshkarev, A.
    Kuznetsov, A.
    Makarov, A.
    Ostreinov, Yu
    Shchudlo, I.
    Sorokin, I.
    Sycheva, T.
    Taskaev, S.
    Zaidi, L.
    18TH INTERNATIONAL CONFERENCE PHYSICA.SPB, 2016, 769