Charged hadron tumour therapy monitoring by means of PET

被引:330
作者
Enghardt, W
Crespo, P
Fiedler, F
Hinz, R
Parodi, K
Pawelke, J
Pönisch, F
机构
[1] Forschungszentrum Rossendorf EV, Inst Nucl & Hadron Phys, D-01314 Dresden, Germany
[2] Hammersmith Hosp, Hammersmith Imanet Ltd, London W12 ONN, England
关键词
positron emission tomography; charged hadron therapy; ion therapy;
D O I
10.1016/j.nima.2004.03.128
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 [仪器科学与技术]; 080401 [精密仪器及机械]; 081102 [检测技术与自动化装置];
摘要
Positron emission tomography (PET) imaging of radioactivity distributions induced by therapeutic irradiation is at present the only feasible method for an in situ and non-invasive monitoring of radiooncology treatments with ion beams. Therefore, at the experimental carbon ion therapy facility at the Gesellschaft fur Schwerionenforschung Darmstadt, Germany (GSI) a PET scanner has been integrated into the treatment site for quality assurance monitoring simultaneously to the therapeutic irradiation. Although the device has been assembled from components of positron emission tomographs developed for nuclear medicine applications, substantial modifications had to be made for meeting the requirements of ion therapy monitoring. These changes regard the geometrical detector configuration as well as the data acquisition and processing. Since 1997 this technique has been applied to monitor the fractionated irradiation of more than 180 patients predominantly suffering from tumours in the head and neck region. It could be demonstrated that this new PET technique is capable of assessing parameters being relevant for quality assurance of carbon ion therapy, i.e. the particle range in tissue, the position of the irradiated volume with respect to anatomical landmarks and local deviations between the planned and the applied dose distributions. (C) 2004 Elsevier B.V. All rights reserved.
引用
收藏
页码:284 / 288
页数:5
相关论文
共 28 条
[2]
VISUALIZATION AND TRANSPORT OF POSITRON EMISSION FROM PROTON ACTIVATION INVIVO [J].
BENNETT, GW ;
ARCHAMBEAU, JO ;
ARCHAMBEAU, BE ;
MELTZER, JI ;
WINGATE, CL .
SCIENCE, 1978, 200 (4346) :1151-1153
[3]
A MULTICRYSTAL 2-DIMENSIONAL BGO DETECTOR SYSTEM FOR POSITRON EMISSION TOMOGRAPHY [J].
CASEY, ME ;
NUTT, R .
IEEE TRANSACTIONS ON NUCLEAR SCIENCE, 1986, 33 (01) :460-463
[4]
TREATMENT PLANNING FOR HEAVY-ION RADIOTHERAPY [J].
CHEN, GTY ;
SINGH, RP ;
CASTRO, JR ;
LYMAN, JT ;
QUIVEY, JM .
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 1979, 5 (10) :1809-1819
[5]
THE SPATIAL-DISTRIBUTION OF POSITRON-EMITTING NUCLEI GENERATED BY RELATIVISTIC LIGHT-ION BEAMS IN ORGANIC-MATTER [J].
ENGHARDT, W ;
FROMM, WD ;
GEISSEL, H ;
KELLER, H ;
KRAFT, G ;
MAGEL, A ;
MANFRASS, P ;
MUNZENBERG, G ;
NICKEL, F ;
PAWELKE, J ;
SCHARDT, D ;
SCHEIDENBERGER, C ;
SOBIELLA, M .
PHYSICS IN MEDICINE AND BIOLOGY, 1992, 37 (11) :2127-2131
[6]
MAGNETIC SCANNING SYSTEM FOR HEAVY-ION THERAPY [J].
HABERER, T ;
BECHER, W ;
SCHARDT, D ;
KRAFT, G .
NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 1993, 330 (1-2) :296-305
[7]
HASCH BG, 1996, THESIS DRESDEN U TEC
[8]
Heeg P., 2002, 20021 GSI, P166
[9]
Treatment planning for heavy ion radiotherapy:: clinical implementation and application [J].
Jäkel, O ;
Krämer, M ;
Karger, CP ;
Debus, J .
PHYSICS IN MEDICINE AND BIOLOGY, 2001, 46 (04) :1101-1116
[10]
A VMEBUS BASED, REAL-TIME SORTER DESIGN FOR POSITRON EMISSION TOMOGRAPHY [J].
JONES, WF ;
CASEY, ME ;
BYARS, LG ;
BURGISS, SG .
IEEE TRANSACTIONS ON NUCLEAR SCIENCE, 1986, 33 (01) :601-604