ION STOPPING POWERS AND CT NUMBERS

被引:78
作者
Moyers, Michael F. [1 ]
Sardesai, Milind
Sun, Sean
Miller, Daniel W.
机构
[1] Proton Therapy Inc, Colton, CA 92324 USA
基金
美国国家航空航天局;
关键词
Protons; Ions; Stopping power; CT; PROTON-BEAM; COMPUTED-TOMOGRAPHY; RADIATION-THERAPY; HOUNSFIELD UNITS; RADIOTHERAPY; CALIBRATION;
D O I
10.1016/j.meddos.2009.05.004
中图分类号
R73 [肿瘤学];
学科分类号
100214 [肿瘤学];
摘要
One of the advantages of ion beam therapy is the steep dose gradient produced near the ion's range. Use of this advantage makes knowledge of the stopping powers for all materials through which the beam passes critical. Most treatment planning systems calculate dose distributions using depth dose data measured in water and an algorithm that converts the kilovoltage X-ray computed tomography (CT) number of a given material to its linear stopping power relative to water. Some materials present in kilovoltage scans of patients and simulation phantoms do not lie on the standard tissue conversion curve. The relative linear stopping powers (RLSPs) of 21 different tissue substitutes and positioning, registration, immobilization, and beamline materials were measured in beams of protons accelerated to energies of 155, 200, and 250 MeV; carbon ions accelerated to 290 MeV/n; and iron ions accelerated to 970 MeV/n. These same materials were scanned with both kilovoltage and megavoltage CT scanners to obtain their CT numbers. Measured RLSPs and CT numbers were compared with calculated and/or literature values. Relationships of RLSPs to physical densities, electronic densities, kilovoltage CT numbers, megavoltage CT numbers, and water equivalence values converted by a treatment planning system are given. Usage of CT numbers and substitution of measured values into treatment plans to provide accurate patient and phantom simulations are discussed. (C) 2010 American Association of Medical Dosimetrists.
引用
收藏
页码:179 / 194
页数:16
相关论文
共 49 条
[1]
*AM COLL RAD, 2003, COMP TOM CT ACCR PRO
[2]
[Anonymous], 1993, STOPPING POWERS RANG
[3]
COMPUTED-TOMOGRAPHY FOR RADIOTHERAPY PLANNING [J].
BATTISTA, JJ ;
RIDER, WD ;
VANDYK, J .
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 1980, 6 (01) :99-107
[4]
COMPTON SCATTER IMAGING OF TRANSVERSE SECTIONS - CORRECTIONS FOR MULTIPLE SCATTER AND ATTENUATIONS [J].
BATTISTA, JJ ;
SANTON, LW ;
BRONSKILL, MJ .
PHYSICS IN MEDICINE AND BIOLOGY, 1977, 22 (02) :229-244
[5]
BISCHEL H, 2000, RADIAT RES, V153, P208
[6]
BISCHEL H, 1992, NUCL INSTRUM METH B, V66, P345
[7]
QUANTITATIVE CT APPLICATIONS - COMPARISON OF CURRENT SCANNERS [J].
CANN, CE .
RADIOLOGY, 1987, 162 (01) :257-261
[8]
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
[9]
AN ELECTRON-DENSITY CALIBRATION PHANTOM FOR CT-BASED TREATMENT PLANNING COMPUTERS [J].
CONSTANTINOU, C ;
HARRINGTON, JC ;
DEWERD, LA .
MEDICAL PHYSICS, 1992, 19 (02) :325-327
[10]
Calibration of CT Hounsfield units for radiotherapy treatment planning of patients with metallic hip prostheses: the use of the extended CT-scale [J].
Coolens, C ;
Childs, PJ .
PHYSICS IN MEDICINE AND BIOLOGY, 2003, 48 (11) :1591-1603