Intrinsic dual-energy processing of myocardial perfusion images

被引:0
|
作者
Brown, JK
Tang, HR
Hattner, RS
Bocher, M
Ratzlaff, NW
Kadkade, PP
Hasegawa, BH
Botvinick, EH
机构
[1] Univ Calif San Francisco, Nucl Med Sect, Div Cardiovasc, San Francisco, CA 94143 USA
[2] Univ Calif San Francisco, Phys Res Lab, S San Francisco, CA USA
[3] Univ Calif San Francisco, Joint Bioengn Grad Grp, San Francisco, CA 94143 USA
[4] Univ Calif San Francisco, Cardiovasc Res Inst, San Francisco, CA 94143 USA
关键词
attenuation correction; myocardial perfusion; SPECT; (TI)-T-201;
D O I
暂无
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
We have developed a software-based method for processing dual-energy (TI)-T-201 SPECT emission projection data with the goal of calculating a spatially dependent index of the local impact of gamma-ray attenuation. We refer to this method as intrinsic dual-energy processing (IDEP). Methods: IDEP exploits the differential attenuation of lower energy emissions (69-83 keV) and higher energy emissions (167 keV) resulting from the decay of (TI)-T-201 to characterize the relative degree of low-energy gamma-ray attenuation throughout the myocardium. In particular, IDEP can be used to estimate the relative probability that a low-energy gamma-ray emitted from a particular region of the myocardium is detected during the acquisition of SPECT projection data. Studies on phantoms and healthy human Volunteers were performed to determine whether the IDEP method yielded detection probability images with systematic structure visible above the noise of these images and whether the systematic structure in the detection probability images could be rationalized physically. In patient studies, the relative regional detection probabilities were applied qualitatively to determine the likely effects of attenuation on the distribution of mapped photon emissions. Results: Measurements of the detection probability in uniform phantoms showed excellent agreement with those obtained from computer simulations for both 180 degrees and 360 degrees acquisitions. Additional simulations with digital phantoms showed good correlation between IDEP-estimated detection probabilities and calculated detection probabilities. In patient studies, the IDEP-derived detection probability maps showed qualitative agreement with known nonuniform attenuation characteristics of the human thorax. When IDEP data were integrated with the findings on the emission scan, the correlation with coronary anatomy (known in 6 patients and hypothesized on the basis of clinical and electrocardiographic parameters in 5 patients) was improved compared with evaluating the mapped emission image alone. Conclusion: The IDEP method has the potential to characterize the attenuation properties of an object without use of a separate transmission scan. Coupled with the emission data, it may aid coronary diagnosis.
引用
收藏
页码:1287 / 1297
页数:11
相关论文
共 50 条
  • [1] Myocardial perfusion imaging using dual-energy computed tomography: a clinical case
    Pontone, Gianluca
    Grancini, Luca
    Andreini, Daniele
    Pepi, Mauro
    Bartorelli, Antonio L.
    EUROPEAN HEART JOURNAL-CARDIOVASCULAR IMAGING, 2013, 14 (08) : 835 - 835
  • [2] Dual-energy CT and its potential use for quantitative myocardial CT perfusion
    So, Aaron
    Hsieh, Jiang
    Narayanan, Suresh
    Thibault, Jean-Baptiste
    Imai, Yasuhiro
    Dutta, Sandeep
    Leipsic, Jonathon
    Min, James
    LaBounty, Troy
    Lee, Ting-Yim
    JOURNAL OF CARDIOVASCULAR COMPUTED TOMOGRAPHY, 2012, 6 (05) : 308 - 317
  • [3] Motion Correction for Improving the Accuracy of Dual-Energy Myocardial Perfusion CT Imaging
    Pack, Jed D.
    Yin, Zhye
    Xiong, Guanglei
    Mittal, Priya
    Dunham, Simon
    Elmore, Kimberly
    Edic, Peter M.
    Min, James K.
    MEDICAL IMAGING 2016-BIOMEDICAL APPLICATIONS IN MOLECULAR, STRUCTURAL, AND FUNCTIONAL IMAGING, 2016, 9788
  • [4] Microvascular Pulmonary Tumor Embolism Detected by Perfusion Images of Dual-Energy Computed Tomography
    Ok, Tae Jin
    Cho, Min Soo
    Jang, Sun-Joo
    Park, Han-Seung
    Park, Hwan Sung
    Park, Se Jeong
    Yoon, Shin Kyo
    Lee, Ho-Su
    Baek, Chung Hee
    Kim, Gwang Un
    Kim, Dalyong
    Hong, Yoonki
    Seo, Joon Beom
    Oh, Yeon-Mok
    TUBERCULOSIS AND RESPIRATORY DISEASES, 2012, 72 (01) : 63 - 67
  • [5] Diagnostic accuracy of coronary CT angiography combined with dual-energy myocardial perfusion imaging for detection of myocardial infarction
    Han, Ruijuan
    Sun, Kai
    Lu, Bin
    Zhao, Ruiping
    Li, Kuncheng
    Yang, Xinchun
    EXPERIMENTAL AND THERAPEUTIC MEDICINE, 2017, 14 (01) : 207 - 213
  • [6] Dual-Energy CT Images: Pearls and Pitfalls
    Parakh, Anushri
    Lennartz, Simon
    An, Chansik
    Rajiah, Prabhakar
    Yeh, Benjamin M.
    Simeone, Frank J.
    Sahani, Dushyant, V
    Kambadakone, Avinash R.
    RADIOGRAPHICS, 2021, 41 (01) : 98 - 119
  • [7] Dual-energy lung perfusion and ventilation CT in children
    Goo, Hyun Woo
    PEDIATRIC RADIOLOGY, 2013, 43 (03) : 298 - 307
  • [8] Dual-energy lung perfusion and ventilation CT in children
    Hyun Woo Goo
    Pediatric Radiology, 2013, 43 : 298 - 307
  • [9] Pulmonary ventilation and perfusion imaging with dual-energy CT
    Sven F. Thieme
    Sandra Hoegl
    Konstantin Nikolaou
    Juergen Fisahn
    Michael Irlbeck
    Daniel Maxien
    Maximilian F. Reiser
    Christoph R. Becker
    Thorsten R. C. Johnson
    European Radiology, 2010, 20 : 2882 - 2889
  • [10] Dual-energy perfusion-CT of pancreatic adenocarcinoma
    Klauss, M.
    Stiller, W.
    Pahn, G.
    Fritz, F.
    Kieser, M.
    Werner, J.
    Kauczor, H. U.
    Grenacher, L.
    EUROPEAN JOURNAL OF RADIOLOGY, 2013, 82 (02) : 208 - 214