박사

새로운 심장영장제제 [18F]FPTP를 이용한 심근관류 평가 및 [13N]암모니아와의 비교 연구 = Evaluation of myocardial perfusion using a novel tracer [18F]FPTP: Comparision with [13N]ammonia as standard tracer

김현식 2015년
논문상세정보
' 새로운 심장영장제제 [18F]FPTP를 이용한 심근관류 평가 및 [13N]암모니아와의 비교 연구 = Evaluation of myocardial perfusion using a novel tracer [18F]FPTP: Comparision with [13N]ammonia as standard tracer' 의 주제별 논문영향력
논문영향력 선정 방법
논문영향력 요약
주제
  • 3차원 융합영상
  • [13n]암모니아
  • [18f]fptp
  • patlak analysis
동일주제 총논문수 논문피인용 총횟수 주제별 논문영향력의 평균
4 0

0.0%

' 새로운 심장영장제제 [18F]FPTP를 이용한 심근관류 평가 및 [13N]암모니아와의 비교 연구 = Evaluation of myocardial perfusion using a novel tracer [18F]FPTP: Comparision with [13N]ammonia as standard tracer' 의 참고문헌

  • Ziadi MC, Williams KA, Guo A, Chow BJ, Renaud JM, Ruddy TD, et al. Impaired myocardial flow reserve on rubidium-82 positron emission tomography imaging predicts adverse outcomes in patients assessed for myocardial ischemia. Journal of the American College of Cardiology. 2011;58(7):740-8.
  • Yao S, Lin W, Ong E, Lu Z, editors. Contrast signal-to-noise ratio for image quality assessment. Image Processing, 2005 ICIP 2005 IEEE International Conference on; 2005: IEEE.
  • Woo SK, Lee YJ, Lee W, Kim MH, Park J, Kim JS, et al. Quantitative assessment technology of small animal myocardial infarction PET image using Gaussian mixture model. Korean Journal of Medical Physics. 2011;22(1):42-51.
  • Wang CX, Snyder WE, Bilbro G, Santago P. Performance evaluation of filtered backprojection reconstruction and iterative reconstruction methods for PET images. Computers in biology and medicine. 1998;28(1):13-25.
  • Visser EP, Disselhorst JA, Brom M, Laverman P, Gotthardt M, Oyen WJ, et al. Spatial resolution and sensitivity of the Inveon small-animal PET scanner. J Nucl Med. 2009;50(1):139-47.
  • Vaquero JJ, Gao D-W, Garc a-Villaba C, Bacharach S, VanBrocklin H, Fang Q, et al. Approach to assessing myocardial perfusion in rats using static [13N]-ammonia images and a small-animal PET. Molecular Imaging and Biology. 2012;14(5):541-5.
  • Thomas D, Bal H, Arkles J, Horowitz J, Araujo L, Acton PD, et al. Noninvasive assessment of myocardial viability in a small animal model: comparison of MRI, SPECT, and PET. Magnetic Resonance in Medicine. 2008;59(2):252-9.
  • Sondergaard HM, Madsen MM, Boisen K, Bottcher M, Schmitz O, Nielsen TT, et al. Evaluation of iterative reconstruction (OSEM) versus filtered back-projection for the assessment of myocardial glucose uptake and myocardial perfusion using dynamic PET. European journal of nuclear medicine and molecular imaging. 2007;34(3):320-9.
  • Sherif HM, Saraste A, Weidl E, Weber AW, Higuchi T, Reder S, et al. Evaluation of a novel 18F-labeled positron-emission tomography perfusion tracer for the assessment of myocardial infarct size in rats. Circulation: Cardiovascular Imaging. 2009;2(2):77-84.
  • Shepp LA, Vardi Y. Maximum likelihood reconstruction for emission tomography. IEEE transactions on medical imaging. 1982;1(2):113-22.
  • Schelbert HR, Phelps ME, Huang SC, MacDonald NS, Hansen H, Selin C, et al. 13N-ammonia as an indicator of myocardial blood flow. Circulation. 1981;63(6):1259-72.
  • Rosenspire KC, Schwaiger M, Mangner TJ, Hutchins GD, Sutorik A, Kuhl DE. Metabolic fate of [13N] ammonia in human and canine blood. Journal of nuclear medicine: official publication, Society of Nuclear Medicine. 1990;31(2):163-7.
  • Rogers JG, Harrop R, Kinahan PE. The Theory of three-dimensional image reconstruction for PET. IEEE Transactions on Medical Imaging. 1987;6(3):239-43.
  • Razifar P, Sandstr m M, Schnieder H, L ngstr m B, Maripuu E, Bengtsson E, et al. Noise correlation in PET, CT, SPECT and PET/CT data evaluated using autocorrelation function: a phantom study on data, reconstructed using FBP and OSEM. BMC Medical Imaging. 2005;5(1):5.
  • Raffel DM, Corbett JR, del Rosario RB, Gildersleeve DL, Chiao PC, Schwaiger M, et al. Clinical evaluation of carbon-11-phenylephrine: MAO-sensitive marker of cardiac sympathetic neurons. J Nucl Med. 1996;37(12):1923-31.
  • Patlak CS, Blasberg RG, Fenstermacher JD. Graphical evaluation of blood-to-brain transfer constants from multiple-time uptake data. Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism. 1983;3(1):1-7.
  • Nekolla S, Reder S, Saraste A, Higuchi T, Dzewas G, Preissel A, et al. Evaluation of the novel myocardial perfusion positron-emission tomography tracer 18F-BMS-747158-02 comparison to 13N-ammonia and validation with microspheres in a pig model. Circulation. 2009;119(17):2333-42.
  • Muzik O, Beanlands R, Wolfe E, Hutchins GD, Schwaiger M. Automated region definition for cardiac nitrogen-13-ammonia PET imaging. J Nucl Med : official publication, Society of Nuclear Medicine. 1993;34(2):336-44.
  • Maruyama A, Hasegawa S, Paul AK, Xiuli M, Yoshioka J, Maruyama K, et al. Myocardial viability assessment with gated SPECT Tc-99m tetrofosmin wall thickening: Comparison with 18F-FDG-PET. Annals of nuclear medicine. 2002;16(1):25-32.
  • Machac J, editor Cardiac positron emission tomography imaging. Seminars in nuclear medicine; 2005: Elsevier.
  • Machac J, Bacharach SL, Bateman TM, Bax JJ, Beanlands R, Bengel F, et al. Positron emission tomography myocardial perfusion and glucose metabolism imaging. Journal of Nuclear Cardiology. 2006;13(6):e121-e51.
  • M ller P, Czernin J, Choi Y, Aguilar F, Nitzsche EU, Buxton DB, et al. Effect of exercise supplementation during adenosine infusion on hyperemic blood flow and flow reserve. American heart journal. 1994;128(1):52-60.
  • Logan J, Fowler JS, Volkow ND, Wolf AP, Dewey SL, Schlyer DJ, et al. Graphical analysis of reversible radioligand binding from time-activity measurements applied to [N-11C-methyl]-(-)-cocaine PET studies in human subjects. Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism. 1990;10(5):740-7.
  • Lee JS. Quantification of myocardial perfusion and function using SPECT and PET. Korean Journal of Nuclear Medicine. 2005;39(2):75-81.
  • Lee BI, Kim KH, Kim JY, Kim SJ, Lee JS, Min JJ, et al. Correlation between semiquantitative myocardial perfusion score and absolute myocardial blood flow in 13N-ammonia PET. Nucl Med Mol Imaging. 2007;41(3):194-200.
  • Lautam ki R, Schuleri KH, Sasano T, Javadi MS, Youssef A, Merrill J, et al. Integration of Infarct Size, Tissue Perfusion, and Metabolism by Hybrid Cardiac Positron Emission Tomography/Computed Tomography Evaluation in a Porcine Model of Myocardial Infarction. Circulation. 2009;2(4):299-305.
  • Kuwabara Y, Watanabe S, Nakaya J, Fujiwara M, Hasegawa R, Matsuno K, et al. Functional evaluation of myocardial viability by 99mTc tetrofosmin gated SPECT?A quantitative comparison with 18F fluorodeoxyglucose positron emission CT (18F FDG PET)?. Annals of nuclear medicine. 1999;13(3):135-40.
  • Kudo T, Fukuchi K, Annala AJ, Chatziioannou AF, Allada V, Dahlbom M, et al. Noninvasive measurement of myocardial activity concentrations and perfusion defect sizes in rats with a new small-animal positron emission tomograph. Circulation. 2002;106(1):118-23.
  • Kim SJ, Lee JS, Lee WW, Kim YK, Jang SJ, Son KR, et al. Multiple linear analysis for generating parametric images of irreversible radiotracer. Nuclear Medicine and Molecular Imaging. 2007;41(4):317-25.
  • Kim SJ, Kim KM, Lee JS. Quantitation of In-Vivo Physiological Function using Nuclear Medicine Imaging and Tracer Kinetic Analysis Methods. Nuclear Medicine and Molecular Imaging. 2008;42(2):145-52.
  • Kim DY, Kim HJ, Yu KH, Min JJ. Synthesis of [18F]-labeled (6-fluorohexyl)triphenylphosphonium cation as a potential agent for myocardial imaging using positron emission tomography. Bioconjugate chemistry. 2012;23(3):431-7.
  • Kim DY, Kim HJ, Yu KH, Min JJ. Synthesis of [18F]-labeled (2-(2-fluoroethoxy)ethyl)tris(4-methoxyphenyl)phosphonium cation as a potential agent for positron emission tomography myocardial imaging. Nuclear medicine and biology. 2012;39(7):1093-8.
  • Kim DY, Kim HJ, Yu KH, Min JJ. Synthesis of [(1)(8)F]-labeled (2-(2-fluoroethoxy)ethyl)triphenylphosphonium cation as a potential agent for myocardial imaging using positron emission tomography. Bioorganic & medicinal chemistry letters. 2012;22(1):319-22.
  • Kim D-Y, Kim H-S, Le UN, Jiang SN, Kim H-J, Lee K-C, et al. Evaluation of a mitochondrial voltage sensor,(18F-fluoropentyl) triphenylphosphonium cation, in a rat myocardial infarction model. J Nucl Med. 2012;53(11):1779-85.
  • Kim D, Kim HS, Jang HY, Kim JH, Bom HS, Min JJ. Comparison of the cardiac microPET images obtained using [18F]FPTP and [13N]NH3 in rat mycoardial infarction models. ACS Med Chem Lett. 2014;5:1124-1128.
  • Khorsand A, Graf S, Pirich C, Muzik O, Kletter K, Dudczak R, et al. Assessment of myocardial perfusion by dynamic N-13 ammonia PET imaging: comparison of 2 tracer kinetic models. Journal of nuclear cardiology. 2005;12(4):410-7.
  • Johnson C, Seidel J, Carson R, Gandler W, Sofer A, Green M, et al., editors. Evaluation of 3D reconstruction algorithms for a small animal PET camera. Nuclear Science Symposium, 1996 Conference Record, 1996 IEEE; 1996: IEEE.
  • Huisman MC, Higuchi T, Reder S, Nekolla SG, Poethko T, Wester H-J, et al. Initial characterization of an 18F-labeled myocardial perfusion tracer. J Nucl Med. 2008;49(4):630-6.
  • Hudson HM, Larkin RS. Accelerated image reconstruction using ordered subsets of projection data. IEEE Transactions on Medical Imaging. 1994;13(4):601-9.
  • Holz A, Lautam ki R, Sasano T, Merrill J, Nekolla SG, Lardo AC, et al. Expanding the versatility of cardiac PET/CT: feasibility of delayed contrast enhancement CT for infarct detection in a porcine model. J Nucl Med. 2009;50(2):259-65.
  • Holte S SP, Linden A, Rosenqvist G, Eriksson L. Iterative image reconstruction for positron emission tomography: a study of convergence and quantitation problems. IEEE Trans Nuc Sci. 1990;37(2):7.
  • Hickey KT, Sciacca RR, Bokhari S, Rodriguez O, Chou R-L, Faber TL, et al. Assessment of cardiac wall motion and ejection fraction with gated PET using 13N-ammonia. Clinical nuclear medicine. 2004;29(4):243-8.
  • Herzog BA, Husmann L, Valenta I, Gaemperli O, Siegrist PT, Tay FM, et al. Long-Term Prognostic Value of 13N-Ammonia Myocardial Perfusion Positron Emission TomographyAdded Value of Coronary Flow Reserve. Journal of the American College of Cardiology. 2009;54(2):150-6.
  • Giorgetti A, Marzullo P, Sambuceti G, Di Quirico S, Kusch A, Landi P, et al. Baseline/post-nitrate Tc-99m tetrofosmin mismatch for the assessment of myocardial viability in patients with severe left ventricular dysfunction: comparison with baseline Tc-99m tetrofosmin scintigraphy/FDG PET imaging. Journal of nuclear cardiology. 2004;11(2):142-51.
  • Gibbons RJ, Valeti US, Araoz PA, Jaffe AS. The quantification of infarct size. J Am Coll Cardiol. 2004;44(8):1533-42.
  • Fukushima K, Javadi MS, Higuchi T, Lautam ki R, Merrill J, Nekolla SG, et al. Prediction of short-term cardiovascular events using quantification of global myocardial flow reserve in patients referred for clinical 82Rb PET perfusion imaging. J Nucl Med. 2011;52(5):726-32.
  • Fonge H, Vunckx K, Wang H, Feng Y, Mortelmans L, Nuyts J, et al. Non-invasive detection and quantification of acute myocardial infarction in rabbits using MONO-[123I] iodohypericin μSPECT. Eur Soc Cardiology. 2007.
  • Fiechter M, Ghadri JR, Gebhard C, Fuchs TA, Pazhenkottil AP, Nkoulou RN, et al. Diagnostic value of 13N-ammonia myocardial perfusion PET: added value of myocardial flow reserve. J Nucl Med. 2012;53(8):1230-4.
  • Endo M, Yoshida K, Iinuma TA, Yamasaki T, Tateno Y, Masuda Y, et al. Noninvasive quantification of regional myocardial blood flow and ammonia extraction fraction using nitroge13N-ammonia and positron emission tomography. Annals of nuclear medicine. 1987;1(1):1-6.
  • Disselhorst JA, Brom M, Laverman P, Slump CH, Boerman OC, Oyen WJ, et al. Image-quality assessment for several positron emitters using the NEMA NU 4-2008 standards in the Siemens Inveon small-animal PET scanner. J Nucl Med. 2010;51(4):610-7.
  • Defrise M, Kinahan PE, Townsend DW, Michel C, Sibomana M, Newport DF. Exact and approximate rebinning algorithms for 3-D PET data. IEEE Transactions on Medical Imaging. 1997;16(2):145-58.
  • DeGrado TR, Hanson MW, Turkington TG, Delong DM, Brezinski DA, Vall e J-P, et al. Estimation of myocardial blood flow for longitudinal studies with 13N-labeled ammonia and positron emission tomography. Journal of Nuclear Cardiology. 1996;3(6):494-507.
  • Dahlbom M EL, Rosenqvist G, Bohm C. A Study of the possibility of using multi-slice PET Systems for 3-D Imaging. IEEE Trans Nuc Sci. 1989;36:6.
  • Constantinescu CC, Mukherjee J. Performance evaluation of an Inveon PET preclinical scanner. Phys Med Biol. 2009;54(9):2885-99.
  • Choi Y, Huang SC, Hawkins RA, Kuhle WG, Dahlbom M, Hoh CK, et al. A simplified method for quantification of myocardial blood flow using nitrogen-13-ammonia and dynamic PET. J Nucl Med : official publication, Society of Nuclear Medicine. 1993;34(3):488-97.
  • Choi Y, Huang SC, Hawkins RA, Kim JY, Kim BT, Hoh CK, et al. Quantification of myocardial blood flow using 13N-ammonia and PET: comparison of tracer models. J Nucl Med : official publication, Society of Nuclear Medicine. 1999;40(6):1045-55.
  • Cho IH, Kong EJ. Myocardial perfusion PET. Nuclear Medicine and Molecular Imaging. 2009;43(3):207-14.
  • Chen GP, Branch KR, Alessio AM, Pham P, Tabibiazar R, Kinahan P, et al. Effect of reconstruction algorithms on myocardial blood flow measurement with 13N-ammonia PET. J Nucl Med. 2007;48(8):1259-65.
  • Bu L, Li R, Jin Z, Wen X, Liu S, Yang B, et al. Evaluation of (99) (m)TcN-MPO as a new myocardial perfusion imaging agent in normal dogs and in an acute myocardial infarction canine model: comparison with (99) (m)Tc-sestamibi. Molecular imaging and biology : MIB : the official publication of the Academy of Molecular Imaging. 2011;13(1):121-7.
  • Bouchareb Y, Thielemans K, Spinks T, Rimoldi O, Camici PG, editors. Comparison of analytic and iterative reconstruction methods for quantitative cardiac PET studies in 3D using Oxygen-15 water scans. Nuclear Science Symposium Conference Record, 2005 IEEE; 2005: IEEE
  • Boellaard R, van Lingen A, Lammertsma AA. Experimental and clinical evaluation of iterative reconstruction (OSEM) in dynamic PET: quantitative characteristics and effects on kinetic modeling. J Nucl Med. 2001;42(5):808-17.
  • Bao Q, Newport D, Chen M, Stout DB, Chatziioannou AF. Performance evaluation of the inveon dedicated PET preclinical tomograph based on the NEMA NU-4 standards. J Nucl Med. 2009;50(3):401-8.
  • Anizan N, Carlier T, Hindorf C, Barbet J, Bardies M. dAcquisition setting optimization and quantitative imaging for 124I studies with the Inveon microPET-CT system. EJNMMI res. 2012;2:7.
  • Acton PD, Thomas D, Zhou R. Quantitative imaging of myocardial infarct in rats with high resolution pinhole SPECT. The international journal of cardiovascular imaging. 2006;22(3-4):429-34.
  • ?1. Won KS. PET and PET/CT in clinical cardiology. Korean Journal of Nuclear Medicine. 2005;39(2):124-32.