Design and experimental validation of a quantitative myocardial 201Tl SPECT system

被引:12
作者
Iida, H [1 ]
Shoji, Y
Sugawara, S
Kinoshita, T
Tamura, Y
Narita, Y
Eberl, S
机构
[1] Res Inst Brain & Blood Vessels Akita, Akita 0100874, Japan
[2] Royal Prince Alfred Hosp, Camperdown, NSW 2050, Australia
关键词
D O I
10.1109/23.775605
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
We have developed a quantitative SPECT system, and evaluated its potential for quantitative assessment of bio-physiological functions in the myocardium particularly with Tl-201. Our approach included development of a transmission system that provides accurate attenuation CL maps, and implementation of ordered-subset EM reconstruction with transmission data based attenuation correction in addition to scatter correction using the transmission-dependent convolution subtraction (TDCS) technique. The transmission system was designed using Monte Carlo simulation to minimize the scatter in the transmission projection data while keeping loss of sensitivity minimal, and was attached to an opposing 2-head gamma camera fitted with parallel beam collimators. Observed CI values agreed with the theoretical expected values in both phantoms and human thorax. Phantom experiments with Tl-201 also demonstrated that, with both corrections for attenuation and scatter, observed images were directly proportional to the actual radioactivity distribution for various phantom geometries. Attenuation correction without scatter correction improved images in deep structure, but resulted in significant artifacts in the chest phantom in addition to dependency of observed radioactivity concentrations on the diameter of cylindrical phantoms. Absolute quantitation of bio-physiological functions, which is well established in PET, is shown to be feasible using SPECT, if both quantitative attenuation and scatter corrections are employed.
引用
收藏
页码:720 / 726
页数:7
相关论文
共 15 条
[1]  
Celler A, 1998, J NUCL MED, V39, P2183
[2]   Reconstruction of multiple line source attenuation maps [J].
Celler, A ;
Sitek, A ;
Harrop, R .
IEEE TRANSACTIONS ON NUCLEAR SCIENCE, 1997, 44 (04) :1503-1508
[3]  
CELLER A, 1995, 1995 IEEE NUCL SCI S, V2, P1121
[4]   ACCELERATED IMAGE-RECONSTRUCTION USING ORDERED SUBSETS OF PROJECTION DATA [J].
HUDSON, HM ;
LARKIN, RS .
IEEE TRANSACTIONS ON MEDICAL IMAGING, 1994, 13 (04) :601-609
[5]   Quantitative assessment of regional myocardial blood flow with thallium-201 and SPECT [J].
Iida, H ;
Eberl, S .
JOURNAL OF NUCLEAR CARDIOLOGY, 1998, 5 (03) :313-331
[6]  
Iida H, 1998, J NUCL MED, V39, P181
[7]   Attenuation compensation for cardiac single-photon emission computed tomographic imaging .2. Attenuation compensation algorithms [J].
King, MA ;
Tsui, BMW ;
Pan, TS ;
Glick, SJ ;
Soares, EJ .
JOURNAL OF NUCLEAR CARDIOLOGY, 1996, 3 (01) :55-64
[8]   ATTENUATION COMPENSATION FOR CARDIAC SINGLE-PHOTON EMISSION COMPUTED TOMOGRAPHIC IMAGING .1. IMPACT OF ATTENUATION AND METHODS OF ESTIMATING ATTENUATION MAPS [J].
KING, MA ;
TSUI, BMW ;
PAN, TS .
JOURNAL OF NUCLEAR CARDIOLOGY, 1995, 2 (06) :513-524
[9]  
LARSSON S, 1993, IEEE NUCL SCI S MED
[10]   Optimized acquisition time and image sampling for dynamic SPECT of Tl-201 [J].
Lau, CH ;
Eberl, S ;
Feng, DG ;
Iida, H ;
Lun, PK ;
Siu, WC ;
Tamura, Y ;
Bautovich, GJ ;
Ono, Y .
IEEE TRANSACTIONS ON MEDICAL IMAGING, 1998, 17 (03) :334-343