骨SPECT 定量における異なる校正用線源の相互校正の精度
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| Published in | 日本放射線技術学会雑誌 Vol. 73; no. 6; pp. 443 - 450 |
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| Main Authors | , , , , , , , , |
| Format | Journal Article |
| Language | Japanese |
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公益社団法人 日本放射線技術学会
2017
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| Subjects | |
| Online Access | Get full text |
| ISSN | 0369-4305 1881-4883 |
| DOI | 10.6009/jjrt.2017_JSRT_73.6.443 |
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| Author | 我妻, 慧 宮司, 典明 寺内, 隆司 三輪, 建太 小泉, 満 滝口, 智洋 茂木, 一樹 梅田, 拓朗 深井, 翔平 |
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| References | 15) Dewaraja YK, Frey EC, Sgouros G, et al. MIRD pamphlet No. 23: quantitative SPECT for patient-specific 3-dimensional dosimetry in internal radionuclide therapy. J Nucl Med 2012; 53(8): 1310–1325. 23) Sokole EB, Heckenberg A, Bergmann H. Influence of high-energy photons from cobalt-57 flood sources on scintillation camera uniformity images. Eur J Nucl Med 1996; 23(4): 437–442. 25) 宮司典明,三輪建太,我妻慧,他.トレーサブル68Ge/68Ga 標準線源を用いたPET 用ドーズキャリブレータの精度管理.日放技学誌2013; 69(12): 1379–1386. 1) Qu X, Huang X, Yan W, et al. A meta-analysis of 18FDG-PET-CT, 18FDG-PET, MRI and bone scintigraphy for diagnosis of bone metastases in patients with lung cancer. Eur J Radiol 2012; 81(5): 1007–1015. 22) Suh MS, Lee WW, Kim YK, et al. Maximum Standardized Uptake Value of 99mTc Hydroxymethylene Diphosphonate SPECT/CT for the Evaluation of Temporomandibular Joint Disorder. Radiology 2016; 280(3): 890–896. 10) Beck M, Sanders JC, Ritt P, et al. Longitudinal analysis of bone metabolism using SPECT/CT and 99mTc-diphosphono-propanedicarboxylic acid: comparison of visual and quantitative analysis. EJNMMI Res 2016; 6(1): 60. 21) Anizan N, Wang H, Zhou XC, et al. Factors affecting the stability and repeatability of gamma camera calibration for quantitative imaging applications based on a retrospective review of clinical data. EJNMMI Res 2014; 4(1): 67. 16) Dewaraja YK, Ljungberg M, Green AJ, et al. MIRD pamphlet No. 24: Guidelines for quantitative 131I SPECT in dosimetry applications. J Nucl Med 2013; 54(12): 2182–2188. 3) Palmedo H, Marx C, Ebert A, et al. Whole-body SPECT/CT for bone scintigraphy: diagnostic value and effect on patient management in oncological patients. Eur J Nucl Med Mol Imaging 2014; 41(1): 59–67. 7) Armstrong IS, Hoffmann SA. Activity concentration measurements using a conjugate gradient (Siemens xSPECT) reconstruction algorithm in SPECT/CT. Nucl Med Commun 2016; 37(11): 1212–1217. 18) He B, Frey EC. Comparison of conventional, model-based quantitative planar, and quantitative SPECT image processing methods for organ activity estimation using In-111 agents. Phys Med Biol 2006; 51(16): 3967–3981. 5) Bailey DL, Willowson KP. Quantitative SPECT/CT: SPECT joins PET as a quantitative imaging modality. Eur J Nucl Med Mol Imaging 2014; 41 (Suppl 1): S17–S25. 17) Anizan N, Wang H, Zhou XC, et al. Factors affecting the repeatability of gamma camera calibration for quantitative imaging applications using a sealed source. Phys Med Biol 2015; 60(3): 1325–1337. 29) Zimmerman BE, Grošev D, Buvat I, et al. Multi-centre evaluation of accuracy and reproducibility of planar and SPECT image quantification: An IAEA phantom study. Z Med Phys 2016; 19. DOI: 10.1016/j.zemedi.2016.03.008 6) Zeintl J, Vija AH, Yahil A, et al. Quantitative accuracy of clinical 99mTc SPECT/CT using ordered-subset expectation maximization with 3-dimensional resolution recovery, attenuation, and scatter correction. J Nucl Med 2010; 51(6): 921–928. 4) Ritt P, Vija H, Hornegger J, et al. Absolute quantification in SPECT. Eur J Nucl Med Mol Imaging 2011; 38 (Suppl 1): S69–77. 13) Boellaard R. Standards for PET image acquisition and quantitative data analysis. J Nucl Med 2009; 50 (Suppl 1): 11S–20S. 24) 我妻慧,三輪建太,秋本健太,他.ガンマカメラ用57Co 面線源の基礎的検討と日常点検への利用.日放技学誌2014; 70(2): 148–153. 27) 野口正安,小峰隆志,秋山正和.容積試料におけるγ線自己吸収の補正法.Radioisotopes 2000; 49(4): 189–198. 28) (社)日本画像医療システム工業会.JESRA X-0051*B-2009 ガンマカメラの性能測定法と表示法.(社)日本画像医療システム工業会規格.2009. 8) Ghosh P. The role of SPECT/CT in skeletal malignancies. Semin Musculoskelet Radiol 2014; 18(2): 175–193. 26) Elbeshir EAI, Bari AMG. Effect of counts per image on the gamma camera uniformity. Internet Journal of Medical Technology 2007; 3 (2). https://print.ispub.com/api/0/ispubarticle/12245. 2) Yang HL, Liu T, Wang XM, et al. Diagnosis of bone metastases: a meta-analysis comparing 18FDG PET, CT, MRI and bone scintigraphy. Eur Radiol 2011; 21(12): 2604–2617. 14) McDougald WA, Miyaoka RS, Alessio AM, et al. A study of SPECT/CT camera stability for quantitative imaging. EJNMMI Phys 2016; 3(1): 14. 20) Sjögreen K, Ljungberg M, Strand SE. An activity quantification method based on registration of CT and whole-body scintillation camera images, with application to 131I. J Nucl Med 2002; 43(7): 972–982. 9) Kaneta T, Ogawa M, Daisaki H, et al. SUV measurement of normal vertebrae using SPECT/CT with Tc-99 m methylene diphosphonate. Am J Nucl Med Mol Imaging 2016; 6(5): 262–268. 19) Willowson K, Bailey DL, Baldock C. Quantitative SPECT reconstruction using CT-derived corrections. Phys Med Biol 2008; 53(12): 3099–3112. 11) Dennis ER, Jia X, Mezheritskiy IS, et al. Bone scan index: a quantitative treatment response biomarker for castration-resistant metastatic prostate cancer. J Clin Oncol 2012; 30(5): 519–524. 12) Bailey DL, Willowson KP. An evidence-based review of quantitative SPECT imaging and potential clinical applications. J Nucl Med 2013; 54(1): 83–89. |
| References_xml | – reference: 2) Yang HL, Liu T, Wang XM, et al. Diagnosis of bone metastases: a meta-analysis comparing 18FDG PET, CT, MRI and bone scintigraphy. Eur Radiol 2011; 21(12): 2604–2617. – reference: 7) Armstrong IS, Hoffmann SA. Activity concentration measurements using a conjugate gradient (Siemens xSPECT) reconstruction algorithm in SPECT/CT. Nucl Med Commun 2016; 37(11): 1212–1217. – reference: 24) 我妻慧,三輪建太,秋本健太,他.ガンマカメラ用57Co 面線源の基礎的検討と日常点検への利用.日放技学誌2014; 70(2): 148–153. – reference: 26) Elbeshir EAI, Bari AMG. Effect of counts per image on the gamma camera uniformity. Internet Journal of Medical Technology 2007; 3 (2). https://print.ispub.com/api/0/ispubarticle/12245. – reference: 4) Ritt P, Vija H, Hornegger J, et al. Absolute quantification in SPECT. Eur J Nucl Med Mol Imaging 2011; 38 (Suppl 1): S69–77. – reference: 27) 野口正安,小峰隆志,秋山正和.容積試料におけるγ線自己吸収の補正法.Radioisotopes 2000; 49(4): 189–198. – reference: 11) Dennis ER, Jia X, Mezheritskiy IS, et al. Bone scan index: a quantitative treatment response biomarker for castration-resistant metastatic prostate cancer. J Clin Oncol 2012; 30(5): 519–524. – reference: 18) He B, Frey EC. Comparison of conventional, model-based quantitative planar, and quantitative SPECT image processing methods for organ activity estimation using In-111 agents. Phys Med Biol 2006; 51(16): 3967–3981. – reference: 22) Suh MS, Lee WW, Kim YK, et al. Maximum Standardized Uptake Value of 99mTc Hydroxymethylene Diphosphonate SPECT/CT for the Evaluation of Temporomandibular Joint Disorder. Radiology 2016; 280(3): 890–896. – reference: 8) Ghosh P. The role of SPECT/CT in skeletal malignancies. Semin Musculoskelet Radiol 2014; 18(2): 175–193. – reference: 5) Bailey DL, Willowson KP. Quantitative SPECT/CT: SPECT joins PET as a quantitative imaging modality. Eur J Nucl Med Mol Imaging 2014; 41 (Suppl 1): S17–S25. – reference: 14) McDougald WA, Miyaoka RS, Alessio AM, et al. A study of SPECT/CT camera stability for quantitative imaging. EJNMMI Phys 2016; 3(1): 14. – reference: 23) Sokole EB, Heckenberg A, Bergmann H. Influence of high-energy photons from cobalt-57 flood sources on scintillation camera uniformity images. Eur J Nucl Med 1996; 23(4): 437–442. – reference: 12) Bailey DL, Willowson KP. An evidence-based review of quantitative SPECT imaging and potential clinical applications. J Nucl Med 2013; 54(1): 83–89. – reference: 21) Anizan N, Wang H, Zhou XC, et al. Factors affecting the stability and repeatability of gamma camera calibration for quantitative imaging applications based on a retrospective review of clinical data. EJNMMI Res 2014; 4(1): 67. – reference: 6) Zeintl J, Vija AH, Yahil A, et al. Quantitative accuracy of clinical 99mTc SPECT/CT using ordered-subset expectation maximization with 3-dimensional resolution recovery, attenuation, and scatter correction. J Nucl Med 2010; 51(6): 921–928. – reference: 17) Anizan N, Wang H, Zhou XC, et al. Factors affecting the repeatability of gamma camera calibration for quantitative imaging applications using a sealed source. Phys Med Biol 2015; 60(3): 1325–1337. – reference: 20) Sjögreen K, Ljungberg M, Strand SE. An activity quantification method based on registration of CT and whole-body scintillation camera images, with application to 131I. J Nucl Med 2002; 43(7): 972–982. – reference: 29) Zimmerman BE, Grošev D, Buvat I, et al. Multi-centre evaluation of accuracy and reproducibility of planar and SPECT image quantification: An IAEA phantom study. Z Med Phys 2016; 19. DOI: 10.1016/j.zemedi.2016.03.008 – reference: 19) Willowson K, Bailey DL, Baldock C. Quantitative SPECT reconstruction using CT-derived corrections. Phys Med Biol 2008; 53(12): 3099–3112. – reference: 15) Dewaraja YK, Frey EC, Sgouros G, et al. MIRD pamphlet No. 23: quantitative SPECT for patient-specific 3-dimensional dosimetry in internal radionuclide therapy. J Nucl Med 2012; 53(8): 1310–1325. – reference: 28) (社)日本画像医療システム工業会.JESRA X-0051*B-2009 ガンマカメラの性能測定法と表示法.(社)日本画像医療システム工業会規格.2009. – reference: 13) Boellaard R. Standards for PET image acquisition and quantitative data analysis. J Nucl Med 2009; 50 (Suppl 1): 11S–20S. – reference: 1) Qu X, Huang X, Yan W, et al. A meta-analysis of 18FDG-PET-CT, 18FDG-PET, MRI and bone scintigraphy for diagnosis of bone metastases in patients with lung cancer. Eur J Radiol 2012; 81(5): 1007–1015. – reference: 25) 宮司典明,三輪建太,我妻慧,他.トレーサブル68Ge/68Ga 標準線源を用いたPET 用ドーズキャリブレータの精度管理.日放技学誌2013; 69(12): 1379–1386. – reference: 16) Dewaraja YK, Ljungberg M, Green AJ, et al. MIRD pamphlet No. 24: Guidelines for quantitative 131I SPECT in dosimetry applications. J Nucl Med 2013; 54(12): 2182–2188. – reference: 9) Kaneta T, Ogawa M, Daisaki H, et al. SUV measurement of normal vertebrae using SPECT/CT with Tc-99 m methylene diphosphonate. Am J Nucl Med Mol Imaging 2016; 6(5): 262–268. – reference: 3) Palmedo H, Marx C, Ebert A, et al. Whole-body SPECT/CT for bone scintigraphy: diagnostic value and effect on patient management in oncological patients. Eur J Nucl Med Mol Imaging 2014; 41(1): 59–67. – reference: 10) Beck M, Sanders JC, Ritt P, et al. Longitudinal analysis of bone metabolism using SPECT/CT and 99mTc-diphosphono-propanedicarboxylic acid: comparison of visual and quantitative analysis. EJNMMI Res 2016; 6(1): 60. |
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| Title | 骨SPECT 定量における異なる校正用線源の相互校正の精度 |
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