Scatter and crosstalk corrections for 99mTc/123I dual-radionuclide imaging using a CZT SPECT system with pinhole collimators

被引:27
|
作者
Fan, Peng [1 ,2 ]
Hutton, Brian F. [3 ,4 ]
Holstensson, Maria [5 ]
Ljungberg, Michael [6 ]
Pretorius, P. Hendrik [7 ]
Prasad, Rameshwar [1 ]
Ma, Tianyu [2 ]
Liu, Yaqiang [2 ]
Wang, Shi [2 ]
Thorn, Stephanie L. [8 ]
Stacy, Mitchel R. [8 ]
Sinusas, Albert J. [8 ]
Liu, Chi [1 ]
机构
[1] Yale Univ, Dept Diagnost Radiol, New Haven, CT 06520 USA
[2] Tsinghua Univ, Dept Engn Phys, Beijing 100084, Peoples R China
[3] UCL, Inst Nucl Med, London WC1E 6BT, England
[4] Univ Wollongong, Ctr Med Radiat Phys, Wollongong, NSW 2522, Australia
[5] Karolinska Univ Hosp, Dept Nucl Med, S-14186 Stockholm, Sweden
[6] Lund Univ, Dept Med Radiat Phys, S-22241 Lund, Sweden
[7] Univ Massachusetts, Sch Med, Dept Radiol, Worcester, MA 01655 USA
[8] Yale Univ, Dept Internal Med, Yale Translat Res Imaging Ctr, New Haven, CT 06520 USA
关键词
CZT detectors; scatter correction; crosstalk correction; pinhole collimators; MONTE-CARLO SIMULATIONS; CAMERA; COMPENSATION;
D O I
10.1118/1.4934830
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
Purpose: The energy spectrum for a cadmium zinc telluride (CZT) detector has a low energy tail due to incomplete charge collection and intercrystal scattering. Due to these solid-state detector effects, scatter would be overestimated if the conventional triple-energy window (TEW) method is used for scatter and crosstalk corrections in CZT-based imaging systems. The objective of this work is to develop a scatter and crosstalk correction method for Tc-99m/I-123 dual-radionuclide imaging for a CZT-based dedicated cardiac SPECT system with pinhole collimators (GE Discovery NM 530c/570c). Methods: A tailing model was developed to account for the low energy tail effects of the CZT detector. The parameters of the model were obtained using Tc-99m and I-123 point source measurements. A scatter model was defined to characterize the relationship between down-scatter and self-scatter projections. The parameters for this model were obtained from Monte Carlo simulation using SIMIND. The tailing and scatter models were further incorporated into a projection count model, and the primary and self-scatter projections of each radionuclide were determined with a maximum likelihood expectation maximization (MLEM) iterative estimation approach. The extracted scatter and crosstalk projections were then incorporated into MLEM image reconstruction as an additive term in forward projection to obtain scatter-and crosstalk-corrected images. The proposed method was validated using Monte Carlo simulation, line source experiment, anthropomorphic torso phantom studies, and patient studies. The performance of the proposed method was also compared to that obtained with the conventional TEW method. Results: Monte Carlo simulations and line source experiment demonstrated that the TEW method overestimated scatter while their proposed method provided more accurate scatter estimation by considering the low energy tail effect. In the phantom study, improved defect contrasts were observed with both correction methods compared to no correction, especially for the images of 99mTc in dual-radionuclide imaging where there is heavy contamination from 123I. In this case, the nontransmural defect contrast was improved from 0.39 to 0.47 with the TEW method and to 0.51 with their proposed method and the transmural defect contrast was improved from 0.62 to 0.74 with the TEW method and to 0.73 with their proposed method. In the patient study, the proposed method provided higher myocardium-to-blood pool contrast than that of the TEW method. Similar to the phantom experiment, the improvement was the most substantial for the images of Tc-99m in dual-radionuclide imaging. In this case, the myocardium-to-blood pool ratio was improved from 7.0 to 38.3 with the TEW method and to 63.6 with their proposed method. Compared to the TEW method, the proposed method also provided higher count levels in the reconstructed images in both phantom and patient studies, indicating reduced overestimation of scatter. Using the proposed method, consistent reconstruction results were obtained for both single-radionuclide data with scatter correction and dual-radionuclide data with scatter and crosstalk corrections, in both phantom and human studies. Conclusions: The authors demonstrate that the TEW method leads to overestimation in scatter and crosstalk for the CZT-based imaging system while the proposed scatter and crosstalk correction method can provide more accurate self-scatter and down-scatter estimations for quantitative single-radionuclide and dual-radionuclide imaging. (C) 2015 American Association of Physicists in Medicine.
引用
收藏
页码:6895 / 6911
页数:17
相关论文
共 50 条
  • [1] 99mTc/123I Dual-Radionuclide Correction for Self-Scatter, Down-Scatter, and Tailing Effect for a CZT SPECT With Varying Tracer Distributions
    Velo, Alexandre F.
    Fan, Peng
    Xie, Huidong
    Chen, Xiongchao
    Boutagy, Nabil
    Feher, Attila
    Sinusas, Albert J.
    Ljungberg, Michael
    Liu, Chi
    IEEE TRANSACTIONS ON RADIATION AND PLASMA MEDICAL SCIENCES, 2023, 7 (08) : 839 - 850
  • [2] Crosstalk correction for 201TI/123I dual-radionuclide imaging using a CZT SPECT camera
    Shibuya, K.
    Ichioka, D.
    Shiraishi, S.
    Yamashita, Y.
    Tomiguchi, S.
    EUROPEAN JOURNAL OF NUCLEAR MEDICINE AND MOLECULAR IMAGING, 2018, 45 : S748 - S748
  • [3] Dual nuclide quantitative imaging with 99mTc/123I using CZT gamma camera
    Laforest, Richard
    Beyder, Dmitry
    Scheve, William
    Silvestros, Delynn
    Shmuel, Natalie
    Kovalski, Gil
    JOURNAL OF NUCLEAR MEDICINE, 2017, 58
  • [4] Physical characteristics of collimators for dual-isotope imaging with 99mTc and 123I
    Tunninen, V.
    Kauppinen, T.
    Eskola, H.
    EMBEC & NBC 2017, 2018, 65 : 245 - 249
  • [5] Correction for crosstalk contaminations in dual radionuclide 99mTc and 123I images using artificial neural network
    Xiao, MZ
    Zubal, IG
    Seibyl, JP
    King, MA
    IEEE TRANSACTIONS ON NUCLEAR SCIENCE, 2004, 51 (05) : 2649 - 2653
  • [6] Correction for scatter and cross-talk in simultaneous 99mTc and 123I imaging for a CZT-based cardiac SPECT scanner
    Holstensson, M.
    Erlandsson, K.
    Kacperski, K.
    Ben-Haim, S.
    Bross, S.
    Hutton, B. F.
    EUROPEAN JOURNAL OF NUCLEAR MEDICINE AND MOLECULAR IMAGING, 2011, 38 : S205 - S205
  • [7] Cross-talk correction for dual radionuclide brain imaging with 99mTc and 123I
    Erlandsson, K
    Visvikis, D
    Waddington, WA
    Costa, DC
    Jarritt, P
    1999 IEEE NUCLEAR SCIENCE SYMPOSIUM - CONFERENCE RECORD, VOLS 1-3, 1999, : 1561 - 1565
  • [8] Model-based crosstalk compensation for simultaneous 99mTc/123I dual-isotope brain SPECT imaging
    Du, Yong
    Tsui, Benjamin M. W.
    Frey, Eric C.
    MEDICAL PHYSICS, 2007, 34 (09) : 3530 - 3543
  • [9] Physical phantom evaluation of simultaneous 99mTc/123I SPECT imaging
    Yang, Bang-Hung
    Wang, Shyh-Jen
    Lee, Jhih-Shian
    Jan, Meei-Ling
    Chang, Chia-Jung
    Chen, Jyh-Cheng
    NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 2011, 652 (01): : 744 - 746
  • [10] Scatter correction based on an artificial neural network for 99mTc and 123I dual-isotope SPECT in myocardial and brain imaging
    Bai, Jingming
    Hashimoto, Jun
    Ogawa, Koichi
    Nakahara, Tadaki
    Suzuki, Takayuki
    Kubo, Atsushi
    ANNALS OF NUCLEAR MEDICINE, 2007, 21 (01) : 25 - 32