In-phantom two-dimensional thermal neutron distribution for intraoperative boron neutron capture therapy of brain tumours

被引:30
作者
Yamamoto, T [1 ]
Matsumura, A
Yamamoto, K
Kumada, H
Shibata, Y
Nose, T
机构
[1] Univ Tsukuba, Inst Clin Med, Dept Neurosurg, Tsukuba, Ibaraki 305, Japan
[2] Japan Atom Energy Res Inst, Tokai Res Estab, Dept Res Reactor, Ibaraki, Japan
[3] Ibaraki Cent Hosp, Dept Neurosurg, Ibaraki, Japan
关键词
D O I
10.1088/0031-9155/47/14/302
中图分类号
R318 [生物医学工程];
学科分类号
0831 [生物医学工程];
摘要
The aim of this study was to determine the in-phantom thermal neutron distribution derived from neutron beams for intraoperative boron neutron capture therapy (IOBNCT). Gold activation wires arranged in a cylindrical water phantom with (void- in-phantom) or without (standard phantom) a cylinder styrene form placed inside were irradiated by using the epithermal beam (ENB) and the mixed thermal-epithermal beam (TNB-1) at the Japan Research Reactor No 4. With ENB, we observed a flattened distribution of thermal neutron flux and a significantly enhanced thermal flux delivery at a depth compared with the results of using TNB-1. The thermal neutron distribution derived from both the ENB and TNB-1 was significantly improved in the void-in-phantom, and a double high dose area was formed lateral to the void. The flattened distribution in the circumference of the void was observed with the combination of ENB and the void- in-phantom. The measurement data suggest that the ENB may provide a clinical advantage in the form of an enhanced and flattened dose delivery to the marginal tissue of a post-operative cavity in which a residual and/or microscopically infiltrating tumour often occurs. The combination of the epithermal neutron beam and IOBNCT will improve the clinical results of BNCT for brain tumours.
引用
收藏
页码:2387 / 2396
页数:10
相关论文
共 19 条
[1]
Toward a final design for the Birmingham boron neutron capture therapy neutron beam [J].
Allen, DA ;
Beynon, TD ;
Green, S ;
James, ND .
MEDICAL PHYSICS, 1999, 26 (01) :77-82
[2]
BURLON A, 2000, P 9 INT S BOR NEUTR, P53
[3]
Boron neutron capture therapy for glioblastoma multiforme: Interim results from the Phase I/II dose-escalation studies [J].
Chanana, AD ;
Capala, J ;
Chadha, M ;
Coderre, JA ;
Diaz, AZ ;
Elowitz, EH ;
Iwai, J ;
Joel, DD ;
Liu, HGB ;
Ma, RM ;
Pendzick, N ;
Peress, NS ;
Shady, MS ;
Slatkin, DN ;
Tyson, GW ;
Wielopolski, L .
NEUROSURGERY, 1999, 44 (06) :1182-1192
[4]
FARR LE, 1954, AM J ROENTGENOL, V71, P279
[5]
FARR LEE E., 1962, INT J NEUROL, V3, P564
[6]
THE POSSIBLE USE OF NEUTRON-CAPTURING ISOTOPES SUCH AS BORON-10 IN THE TREATMENT OF NEOPLASMS .2. COMPUTATION OF THE RADIATION ENERGIES AND ESTIMATES OF EFFECTS IN NORMAL AND NEOPLASTIC BRAIN [J].
JAVID, M ;
BROWNELL, GL ;
SWEET, WH .
JOURNAL OF CLINICAL INVESTIGATION, 1952, 31 (06) :604-610
[7]
Position dependence of the visibility of a single gold atom in silicon crystals in HAADF-STEM image simulation [J].
Nakamura, K ;
KaKibayashi, H ;
Kanehori, K ;
Tanaka, N .
JOURNAL OF ELECTRON MICROSCOPY, 1997, 46 (01) :33-43
[8]
DEMONSTRATION OF 3-DIMENSIONAL DETERMINISTIC RADIATION TRANSPORT-THEORY DOSE DISTRIBUTION ANALYSIS FOR BORON NEUTRON-CAPTURE THERAPY [J].
NIGG, DW ;
RANDOLPH, PD ;
WHEELER, FJ .
MEDICAL PHYSICS, 1991, 18 (01) :43-53
[9]
3D-recurrence-patterns of glioblastomas after CT-planned postoperative irradiation [J].
Oppitz, U ;
Maessen, D ;
Zunterer, H ;
Richter, S ;
Flentje, M .
RADIOTHERAPY AND ONCOLOGY, 1999, 53 (01) :53-57
[10]
DETERMINATION OF DOSE COMPONENTS IN PHANTOMS IRRADIATED WITH AN EPITHERMAL NEUTRON BEAM FOR BORON NEUTRON-CAPTURE THERAPY [J].
RAAIJMAKERS, CPJ ;
KONIJNENBERG, MW ;
VERHAGEN, HW ;
MIJNHEER, BJ .
MEDICAL PHYSICS, 1995, 22 (03) :321-329