Nakao R, Nagao M, Yamamoto A, Fukushima K, Watanabe E, Sakai S, Hagiwara N (2020) Papillary muscle ischemia on high-resolution cine imaging of nitrogen-13 ammonia positron emission tomography: association with myocardial flow reserve and prognosis in coronary artery disease. J Nucl Cardiol 29:293–303
Murthy VL, Bateman TM, Beanlands RS, Berman DS, Borges-Neto S, Chareonthaitawee P, Cerqueira MD, deKemp RA, DePuey EG, Dilsizian V, Dorbala S, Ficaro EP, Garcia EV, Gewirtz H, Heller GV, Lewin HC, Malhotra S, Mann A, Ruddy TD, Schindler TH, Schwartz RG, Slomka PJ, Soman P, Di Carli MF (2018) Clinical quantification of myocardial blood flow using PET: joint position paper of the SNMMI cardiovascular council and the ASNC. J Nucl Cardiol 25:269–297
Lima RSL, Watson DD, Goode AR, Siadaty MS, Ragosta M, Beller GA, Samady H (2003) Incremental value of combined perfusion and function over perfusion alone by gated SPECT myocardial perfusion imaging for detection of severe three-vessel coronary artery disease. J Am Coll Cardiol 42:64–70
Naya M, Murthy VL, Taqueti VR, Foster CR, Klein J, Garber M, Dorbala S, Hainer J, Blankstein R, Resnic R, Di Carli MF (2014) Preserved coronary flow reserve effectively excludes high-risk coronary artery disease on angiography. J Nucl Med 55:248–255
Majmudar MD, Murthy VL, Shah RV, Kolli S, Mousavi N, Foster CR, Hainer J, Blankstein R, Dorbala S, Sitek A, Stevenson LW, Mehra MR, Di Carli MF (2015) Quantification of coronary flow reserve in patients with ischaemic and non-ischaemic cardiomyopathy and its association with clinical outcomes. Eur Heart J Cardiovasc Imaging 16:900–909
PubMed PubMed Central Google Scholar
Fiechter M, Ghadri JR, Gebhard C, Fuchs TA, Pazhenkottil AP, Nkoulou RN, Herzog BA, Wyss CA, Gaemperli O, Kaufmann PA (2012) Diagnostic value of 13N-ammonia myocardial perfusion PET: added value of myocardial flow reserve. J Nucl Med 53:1230–1234
Kaufmann PA, Camici PG (2005) Myocardial blood flow measurement by PET: technical aspects and clinical applications. J Nucl Med 46:75–88
Japan Radioisotope Association (2024) The present state of nuclear medicine practice in Japan. Radioisotopes 72:49–100
Notghi A, Low CS (2011) Myocardial perfusion scintigraphy: past, present and future. Br J Radiol 84:S229–S236
PubMed PubMed Central Google Scholar
Aarnoudse WH, Botman KJBM, Pijls NHJ (2003) False-negative myocardial scintigraphy in balanced three-vessel disease, revealed by coronary pressure measurement. Int J Cardiovasc Intervent 5:67–71
Tamam M, Mulazimoglu M, Edis N, Ozpacaci T (2016) The value of attenuation correction in hybrid cardiac SPECT/CT on inferior wall according to body mass index. World J Nucl Med 15:18–23
PubMed PubMed Central Google Scholar
Bellevre D, Manrique A, Legallois D, Bross S, Baavour R, Roth N, Blaire T, Desmonts C, Bailliez A, Agostini D (2015) First determination of the heart-to-mediastinum ratio using cardiac dual isotope (123I-MIBG/99mTc-tetrofosmin) CZT imaging in patients with heart failure: the ADRECARD study. Eur J Nucl Med Mol Imaging 42:1912–1919
Fujiwara S, Takeishi Y, Atsumi H, Chiba J, Takahashi K, Tomoike H (1998) Quantitative assessment of myocardial 99mTc-sestamibi uptake during exercise: usefulness of response rate for assessing severity of coronary artery disease. Jpn Circ J 62:592–598
Niimi T, Unno K, Hirayama K, Yoshida S, Nanasato M (2024) Relationship between myocardial flow reserve measured by a dynamic cadmium-zinc-telluride camera and increase rate in myocardial uptake of radionuclide during stress. Clin Transl Imaging 13:73–82
Yamamoto A, Nakao R, Inuduka K, Nagao M, Imakado L, Matsuo Y, Shibahashi H, Fukushima K, Sakai A, Yamaguchi J, Sakai S (2023) Treatment strategy for stable coronary artery disease using myocardial ammonia PET data in Japan. Kakuigaku 17:22
Cerqueira MD, Weissman NJ, Dilsizian V, Jacobs AK, Kaul S, Laskey WK, Pennell DJ, Rumberger JA, Ryan T, Verani MS (2002) Standardized myocardial segmentation and nomenclature for tomographic imaging of the heart. A statement for healthcare professionals from the Cardiac Imaging Committee of the Council on Clinical Cardiology of the American Heart Association. Circulation 105:539–542
Yamamoto A, Nagao M, Ando K, Nakao R, Matsuo Y, Sakai A, Momose M, Kaneko K, Hagiwara N, Sakai S (2022) First validation of myocardial flow reserve derived from dynamic 99mTc-sestamibi CZT-SPECT camera compared with13N-ammonia PET. Int Heart J 63:202–209
Giubbini R, Bertoli M, Durmo R, Bonacina M, Peli A, Faggiano I, Albano D, Milan E, Stern E, Paghera B, Rodella C, Cerudelli E, Gazzilli M, Dondi F, Bertagna F, Camoni L (2021) Comparison between N13 NH3-PET and 99mTc tetrofosmin-CZT SPECT in the evaluation of absolute myocardial blood flow and flow reserve. J Nucl Cardiol 28:1906–1918
Acampa W, Zampella E, Assante R, Genova A, De Simini GD, Mannarino T, D’Antonio A, Gaudieri V, Nappi C, Buongiorno P, Mainolfi CG, Petretta M, Cuocolo A (2021) Quantification of myocardial perfusion reserve by CZT-SPECT: a head to head comparison with 82Rubidium PET imaging. J Nucl Cardiol 28:2827–2839
Agostini D, Roule V, Nganoa C, Roth N, Baavour R, Parienti JJ, Beygui F, Manrique A (2018) First validation of myocardial flow reserve assessed by dynamic 99mTc-sestamibi CZT-SPECT camera: head to head comparison with 15O-water PET and fractional flow reserve in patients with suspected coronary artery disease. The WATERDAY study. Eur J Nucl Med Mol Imaging 45:1079–1090
CAS PubMed PubMed Central Google Scholar
Ziadi MC (2017) Myocardial flow reserve (MFR) with positron emission tomography (PET)/computed tomography (CT): clinical impact in diagnosis and prognosis. Cardiovasc Diagn Ther 7:206–218
PubMed PubMed Central Google Scholar
Mohr WW, Gibson DL, Pang W (1996) Extra-cardiac uptake of technetium-99m-MIBI: normal and abnormal variants. J Nucl Med Technol 24:104–111
Gedik GK, Ergün EL, Aslan M, Caner B (2007) Unusual extracardiac findings detected on myocardial perfusion single photon emission computed tomography studies with Tc-99m sestamibi. Clin Nucl Med 32:920–926
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