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Published in: European Radiology 10/2008

01-10-2008 | Computer Tomography

CT coronary angiography: Quantitative assessment of myocardial perfusion using test bolus data–initial experience

Authors: Ashley M. Groves, Vicky Goh, Sabarinath Rajasekharan, Irfan Kayani, Raymondo Endozo, John C. Dickson, Leon J. Menezes, Manu Shastry, Said B. Habib, Peter J. Ell, Brian F. Hutton

Published in: European Radiology | Issue 10/2008

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Abstract

The aim of this study is to quantify myocardial perfusion during coronary CT angiography using data from a modified timing test-bolus acquisition. Institutional review board approval and informed consent were obtained. Nineteen patients with suspected coronary artery disease underwent combined coronary CT angiography and cardiac 82Rubidium-PET perfusion. Prior to the CT angiogram a retrospectively ECG-gated dynamic test bolus was obtained following 25 mls of IV contrast medium injected at 5 ml/s. Images were acquired every 1.5 s for 30 s using 4 × 1.25-mm slices at 120 kV, 35 mAs. Regions of interest were drawn to delineate the myocardium and aorta on the resulting transaxial images. Time density curves were created and perfusion calculated using two simple approaches: maximum-slope method and peak method. In patients with normal PET myocardial perfusion, the mean (SD) resting myocardial perfusion estimated by CT using the maximum-slope method was 0.89 (±0.27) ml/min/g and 0.93 (±0.21) ml/min/g at end-systole and end-diastole, respectively, and 0.69 (±0.11) ml/min/g and 0.79 (±0.19) at end-systole and end-diastole, respectively, for the peak method. Thus quantification of myocardial perfusion from a routine coronary CT angiography test bolus is possible. CT-derived myocardial perfusion values are consistent with published values derived from other techniques.
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Literature
2.
go back to reference Cuocolo A, Acampa W, Inbriaco M, De Luca N, Iovino GL, Salvatore MG (2005) The many ways to myocardial perfusion imaging. Q J Nucl Med Mol Imaging 49:4–18PubMed Cuocolo A, Acampa W, Inbriaco M, De Luca N, Iovino GL, Salvatore MG (2005) The many ways to myocardial perfusion imaging. Q J Nucl Med Mol Imaging 49:4–18PubMed
3.
go back to reference Hoffmann MH, Shi H, Schmitz BL et al (2005) Noninvasive coronary angiography with multislice computed tomography. JAMA 293:2471–2478PubMedCrossRef Hoffmann MH, Shi H, Schmitz BL et al (2005) Noninvasive coronary angiography with multislice computed tomography. JAMA 293:2471–2478PubMedCrossRef
4.
go back to reference Schwitter J, Nanz D, Kneifel S et al (2001) Assessment of myocardial perfusion in coronary artery disease by magnetic resonance. Circulation 103:2230–2235PubMed Schwitter J, Nanz D, Kneifel S et al (2001) Assessment of myocardial perfusion in coronary artery disease by magnetic resonance. Circulation 103:2230–2235PubMed
5.
go back to reference Schoepf UJ, Becker CR, Ohnesorge BM, Yucel EK (2004) CT of coronary artery disease. Radiology 232:18–37PubMedCrossRef Schoepf UJ, Becker CR, Ohnesorge BM, Yucel EK (2004) CT of coronary artery disease. Radiology 232:18–37PubMedCrossRef
6.
go back to reference Schoepf UJ, Zwerner PL, Savino G, Herzog C, Kerl JM, Costello P (2007) Coronary CT angiography. Radiology 244:48–63PubMedCrossRef Schoepf UJ, Zwerner PL, Savino G, Herzog C, Kerl JM, Costello P (2007) Coronary CT angiography. Radiology 244:48–63PubMedCrossRef
7.
go back to reference Scheffel H, Alkadhi H, Plass A et al (2006) Accuracy of dual-source CT coronary angiography: first experience in a high pre-test probability population without heart rate control. Eur Radiol 16:2739–2747PubMedCrossRef Scheffel H, Alkadhi H, Plass A et al (2006) Accuracy of dual-source CT coronary angiography: first experience in a high pre-test probability population without heart rate control. Eur Radiol 16:2739–2747PubMedCrossRef
8.
go back to reference Medical Services Agency (2003) Im-PACT CT patient dosimetry calculator version 0.99 q. Medical Devices Agency, London, UK Medical Services Agency (2003) Im-PACT CT patient dosimetry calculator version 0.99 q. Medical Devices Agency, London, UK
9.
go back to reference Miles KA (1991) Measurement of tissue perfusion by dynamic computed tomography. Br J Radiol 64:409–412PubMed Miles KA (1991) Measurement of tissue perfusion by dynamic computed tomography. Br J Radiol 64:409–412PubMed
10.
go back to reference Miles KA, Hayball M, Dixon AK (1991) Colour perfusion imaging: a new application of computed tomography. Lancet 337:643–645PubMedCrossRef Miles KA, Hayball M, Dixon AK (1991) Colour perfusion imaging: a new application of computed tomography. Lancet 337:643–645PubMedCrossRef
11.
go back to reference Gillard JH, Minhas PS, Hayball MP et al (2000) Assessment of quantitative computed tomographic cerebral perfusion imaging with H2(15)O positron emission romography. Neurol Res 22:457–64PubMed Gillard JH, Minhas PS, Hayball MP et al (2000) Assessment of quantitative computed tomographic cerebral perfusion imaging with H2(15)O positron emission romography. Neurol Res 22:457–64PubMed
12.
go back to reference Mullani NA, Gould KG (1983) First pass measurement of regional blood flow using external detectors. J Nucl Med 24:577–581PubMed Mullani NA, Gould KG (1983) First pass measurement of regional blood flow using external detectors. J Nucl Med 24:577–581PubMed
13.
go back to reference Austen WG, Edwards JE, Frye RL et al (1975) A reporting system on patients evaluated for coronary artery disease. Report of the Ad Hoc Committee for Grading of Coronary Artery Disease, Council on cardiovascular Surgery, American Heart Association. Circulation 51(4 Suppl):5–40PubMed Austen WG, Edwards JE, Frye RL et al (1975) A reporting system on patients evaluated for coronary artery disease. Report of the Ad Hoc Committee for Grading of Coronary Artery Disease, Council on cardiovascular Surgery, American Heart Association. Circulation 51(4 Suppl):5–40PubMed
14.
go back to reference Wolfkiel CJ, Ferguson JL, Chomka EV et al (1987) Measurement of myocardial blood flow by ultrafast computed tomography. Circulation 76:1262–1273PubMed Wolfkiel CJ, Ferguson JL, Chomka EV et al (1987) Measurement of myocardial blood flow by ultrafast computed tomography. Circulation 76:1262–1273PubMed
15.
go back to reference Bell MR, Lerman LO, Rumberger JA et al (1999) Validation of minimally invasive measurement of myocardial perfusion using electron beam computed tomography and application in human volunteers. Heart 81:628–635PubMed Bell MR, Lerman LO, Rumberger JA et al (1999) Validation of minimally invasive measurement of myocardial perfusion using electron beam computed tomography and application in human volunteers. Heart 81:628–635PubMed
16.
go back to reference Knollmann FD, Muschick P, Krause W, Hausmann H, Hetzer R, Felix R (2001) Detection of myocardial ischemia by electron beam CT. Experimental studies. Acta Radiol 42:386–392PubMed Knollmann FD, Muschick P, Krause W, Hausmann H, Hetzer R, Felix R (2001) Detection of myocardial ischemia by electron beam CT. Experimental studies. Acta Radiol 42:386–392PubMed
17.
go back to reference Mohlenkamp S, Lerman LO, Lerman A et al (2000) Minimally invasive evaluation of coronary microvascular function by electron beam computed tomography. Circulation 102:2411–2416PubMed Mohlenkamp S, Lerman LO, Lerman A et al (2000) Minimally invasive evaluation of coronary microvascular function by electron beam computed tomography. Circulation 102:2411–2416PubMed
18.
go back to reference Mohlenkamp S, Behrenbeck TR, Lerman A et al (2001) Coronary microvascular functional reserve: quantification of long term changes with electron beam CT-preliminary results in a porcine model. Radiology 221:229–236PubMedCrossRef Mohlenkamp S, Behrenbeck TR, Lerman A et al (2001) Coronary microvascular functional reserve: quantification of long term changes with electron beam CT-preliminary results in a porcine model. Radiology 221:229–236PubMedCrossRef
19.
go back to reference Hoffmann U, Millea R, Enzweiler C et al (2004) Acute myocardial infarction–contrast enhanced multidetector row CT in a porcine model. Radiology 231:697–701PubMedCrossRef Hoffmann U, Millea R, Enzweiler C et al (2004) Acute myocardial infarction–contrast enhanced multidetector row CT in a porcine model. Radiology 231:697–701PubMedCrossRef
20.
go back to reference Nikolaou K, Sanz J, Poon M et al (2005) Assessment of myocardial perfusion and viability from routine contrast-enhanced 16-detector row computed tomography of the heart: preliminary results. Eur Radiol 15:864–871PubMedCrossRef Nikolaou K, Sanz J, Poon M et al (2005) Assessment of myocardial perfusion and viability from routine contrast-enhanced 16-detector row computed tomography of the heart: preliminary results. Eur Radiol 15:864–871PubMedCrossRef
21.
go back to reference Daghini E, Primak AN, Chade AR et al (2007) Evaluation of porcine myocardial microvascular permeability and fractional vascular volume using 64-slice. Helical computed tomography (CT). Invest Radiol 42:274–282PubMedCrossRef Daghini E, Primak AN, Chade AR et al (2007) Evaluation of porcine myocardial microvascular permeability and fractional vascular volume using 64-slice. Helical computed tomography (CT). Invest Radiol 42:274–282PubMedCrossRef
22.
go back to reference Sciacca RR, Akinboboye O, Chou RL, Epstein S, Bergmann SR (2001) Measurement of myocardial blood flow with PET using 1–11C-acetate. J Nucl Med 42:63–70PubMed Sciacca RR, Akinboboye O, Chou RL, Epstein S, Bergmann SR (2001) Measurement of myocardial blood flow with PET using 1–11C-acetate. J Nucl Med 42:63–70PubMed
23.
go back to reference Cullen JH, Horsfield MA, Reek CR, Cherryman GR, Barnett DB, Samani NJ (1999) A myocardial perfusion reserve index in humans using first-pass contrast-enhanced magnetic resonance imaging. J Am Coll Cardiol 33:1386–1394PubMedCrossRef Cullen JH, Horsfield MA, Reek CR, Cherryman GR, Barnett DB, Samani NJ (1999) A myocardial perfusion reserve index in humans using first-pass contrast-enhanced magnetic resonance imaging. J Am Coll Cardiol 33:1386–1394PubMedCrossRef
24.
go back to reference Tadamura E, Iida H, Matsumoto K et al (2001) Comparison of myocardial blood flow doing dobutamine-atropine infusion with that after dipyridamole administration in normal men. J Am Coll Cardiol 37:130–136PubMedCrossRef Tadamura E, Iida H, Matsumoto K et al (2001) Comparison of myocardial blood flow doing dobutamine-atropine infusion with that after dipyridamole administration in normal men. J Am Coll Cardiol 37:130–136PubMedCrossRef
25.
go back to reference Sanelli PC, Nicola G, Tsiouris AJ et al (2007) Reproducibility of postprocessing of quantitative CT perfusion maps. AJR Am J Roentgenol 188:213–218PubMedCrossRef Sanelli PC, Nicola G, Tsiouris AJ et al (2007) Reproducibility of postprocessing of quantitative CT perfusion maps. AJR Am J Roentgenol 188:213–218PubMedCrossRef
26.
go back to reference Fiorella D, Heiserman J, Prenger E, Partovi S (2004) Assessment of the reproducibility of postprocessing dynamic CT perfusion data. Am J Neuroradiol 25:97–107PubMed Fiorella D, Heiserman J, Prenger E, Partovi S (2004) Assessment of the reproducibility of postprocessing dynamic CT perfusion data. Am J Neuroradiol 25:97–107PubMed
27.
go back to reference Goh V, Halligan S, Hugill JA, Bartram CI (2005) Quantitative assessment of colorectal cancer perfusion using MDCT: inter and intra-observer agreement. AJR Am J of Roentogenol 185:225–231 Goh V, Halligan S, Hugill JA, Bartram CI (2005) Quantitative assessment of colorectal cancer perfusion using MDCT: inter and intra-observer agreement. AJR Am J of Roentogenol 185:225–231
28.
go back to reference Bisdas S, Konstantinou GN, Lee PS, Thng CH, Wagenblast J, Koh TS (2007) Dynamic constrast-enhanced CT of head and neck tumors: perfusion measurements using a distributed-parameter tracer kinetic model. Initial results and comparison with deconvolution-based analysis. Phys Med Biol 52:6181–6196PubMedCrossRef Bisdas S, Konstantinou GN, Lee PS, Thng CH, Wagenblast J, Koh TS (2007) Dynamic constrast-enhanced CT of head and neck tumors: perfusion measurements using a distributed-parameter tracer kinetic model. Initial results and comparison with deconvolution-based analysis. Phys Med Biol 52:6181–6196PubMedCrossRef
29.
go back to reference George RT, Jerosch-Herold M, Silva C et al (2007) Quantification of myocardial perfusion using dynamic 64-detector computed tomography. Invest Radiol 42:815–22PubMedCrossRef George RT, Jerosch-Herold M, Silva C et al (2007) Quantification of myocardial perfusion using dynamic 64-detector computed tomography. Invest Radiol 42:815–22PubMedCrossRef
30.
go back to reference Nabavi DG, Cenic A, Craen RA et al (1999) CT assessment of cerebral perfusion: experimental validation and initial clinical experience. Radiology 213:141–149PubMed Nabavi DG, Cenic A, Craen RA et al (1999) CT assessment of cerebral perfusion: experimental validation and initial clinical experience. Radiology 213:141–149PubMed
31.
go back to reference St Lawrence KS, Lee TY (1998) An adiabatic approximation to the tissue homogeneity model for water exchange in the the brain: I. Theoretical derivation. J Cereb Blood Flow Metab 18:1365–1377PubMedCrossRef St Lawrence KS, Lee TY (1998) An adiabatic approximation to the tissue homogeneity model for water exchange in the the brain: I. Theoretical derivation. J Cereb Blood Flow Metab 18:1365–1377PubMedCrossRef
32.
go back to reference Dennis Cheong LH, Tchoyoson Lim CC, Koh TS (2004) Dynamic contrast-enhanced CT of intracranial meningioma: comparison of distributed and compartmental tracer kinetic models–initial results. Radiology 232:921–930PubMedCrossRef Dennis Cheong LH, Tchoyoson Lim CC, Koh TS (2004) Dynamic contrast-enhanced CT of intracranial meningioma: comparison of distributed and compartmental tracer kinetic models–initial results. Radiology 232:921–930PubMedCrossRef
33.
go back to reference Lee TY, Purdie TG, Stewart EE (2003) CT imaging of angiogenesis. Q J Nucl Med 41:171–187 Lee TY, Purdie TG, Stewart EE (2003) CT imaging of angiogenesis. Q J Nucl Med 41:171–187
34.
go back to reference Miles KA, Hayball MP, Dixon AK (1993) Functional images of hepatic perfusion obtained by dynamic CT. Radiology 188:405–11PubMed Miles KA, Hayball MP, Dixon AK (1993) Functional images of hepatic perfusion obtained by dynamic CT. Radiology 188:405–11PubMed
35.
go back to reference Blomley MJ, Coulden R, Dawson P et al (1995) Liver perfusion studied with ultrafast CT. J Comput Assist Tomogr 19:424–33PubMedCrossRef Blomley MJ, Coulden R, Dawson P et al (1995) Liver perfusion studied with ultrafast CT. J Comput Assist Tomogr 19:424–33PubMedCrossRef
36.
go back to reference Bize PE, Platon A, Becker CD et al (2006) Perfusion measurement in acute pancreatitis using dynamic perfusion MDCT. AJR Am J Roentgenology 186:114–8CrossRef Bize PE, Platon A, Becker CD et al (2006) Perfusion measurement in acute pancreatitis using dynamic perfusion MDCT. AJR Am J Roentgenology 186:114–8CrossRef
37.
go back to reference Kiessling F, Boese J, Corvinus C et al (2004) Perfusion CT in patients with advanced bronchial carcinoma: a novel chance for characterization and treatment monitoring. Eur Radiol 14:1226–1233PubMed Kiessling F, Boese J, Corvinus C et al (2004) Perfusion CT in patients with advanced bronchial carcinoma: a novel chance for characterization and treatment monitoring. Eur Radiol 14:1226–1233PubMed
38.
go back to reference Hirasawa H, Tsushima Y, Hirasawa S et al (2007) Perfusion CT of breast carcinoma: Arterial perfusion of nonschirrous carcinoma was higher than that of schirrous carcinoma. Acad Radiol 14:547–52PubMedCrossRef Hirasawa H, Tsushima Y, Hirasawa S et al (2007) Perfusion CT of breast carcinoma: Arterial perfusion of nonschirrous carcinoma was higher than that of schirrous carcinoma. Acad Radiol 14:547–52PubMedCrossRef
39.
go back to reference Bisdas S, Konstantinou GN, Lee PS, Thng CH, Wagenblast J, Koh TS (2007) Dynamic constrast-enhanced CT of head and neck tumors: perfusion measurements using a distributed-parameter tracer kinetic model. Initial results and comparison with deconvolution-based analysis. Phys Med Biol 52:6181–6196PubMedCrossRef Bisdas S, Konstantinou GN, Lee PS, Thng CH, Wagenblast J, Koh TS (2007) Dynamic constrast-enhanced CT of head and neck tumors: perfusion measurements using a distributed-parameter tracer kinetic model. Initial results and comparison with deconvolution-based analysis. Phys Med Biol 52:6181–6196PubMedCrossRef
40.
go back to reference Lerman LO, Siripornpitak S, Maffei NL, Sheedy PF, Ritman EL (1999) Measurement of in vivo myocardial microcirculatory function with electron beam CT. J Comput Assist Tomogr 23:390–398PubMedCrossRef Lerman LO, Siripornpitak S, Maffei NL, Sheedy PF, Ritman EL (1999) Measurement of in vivo myocardial microcirculatory function with electron beam CT. J Comput Assist Tomogr 23:390–398PubMedCrossRef
Metadata
Title
CT coronary angiography: Quantitative assessment of myocardial perfusion using test bolus data–initial experience
Authors
Ashley M. Groves
Vicky Goh
Sabarinath Rajasekharan
Irfan Kayani
Raymondo Endozo
John C. Dickson
Leon J. Menezes
Manu Shastry
Said B. Habib
Peter J. Ell
Brian F. Hutton
Publication date
01-10-2008
Publisher
Springer-Verlag
Published in
European Radiology / Issue 10/2008
Print ISSN: 0938-7994
Electronic ISSN: 1432-1084
DOI
https://doi.org/10.1007/s00330-008-0987-9

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