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Subtraction MR Venography Acquired from Time-Resolved Contrast-Enhanced MR Angiography: Comparison with Phase-Contrast MR Venography and Single-Phase Contrast-Enhanced MR Venography

  • Jang, Jinhee (Department of Radiology, Seoul St. Mary's Hospital, College of Medicine, The Catholic University of Korea) ;
  • Kim, Bum-Soo (Department of Radiology, Seoul St. Mary's Hospital, College of Medicine, The Catholic University of Korea) ;
  • Sung, Jinkyeong (Department of Radiology, St. Vincent's Hospital, College of Medicine, The Catholic University of Korea) ;
  • Kim, Bom-Yi (Department of Radiology, Seoul St. Mary's Hospital, College of Medicine, The Catholic University of Korea) ;
  • Choi, Hyun Seok (Department of Radiology, Seoul St. Mary's Hospital, College of Medicine, The Catholic University of Korea) ;
  • Jung, So-Lyung (Department of Radiology, Seoul St. Mary's Hospital, College of Medicine, The Catholic University of Korea) ;
  • Ahn, Kook-Jin (Department of Radiology, Seoul St. Mary's Hospital, College of Medicine, The Catholic University of Korea)
  • 투고 : 2015.03.05
  • 심사 : 2015.07.21
  • 발행 : 2015.11.01

초록

Objective: To evaluate the image characteristics of subtraction magnetic resonance venography (SMRV) from time-resolved contrast-enhanced MR angiography (TRMRA) compared with phase-contrast MR venography (PCMRV) and single-phase contrast-enhanced MR venography (CEMRV). Materials and Methods: Twenty-one patients who underwent brain MR venography (MRV) using standard protocols (PCMRV, CEMRV, and TRMRA) were included. SMRV was made by subtracting the arterial phase data from the venous phase data in TRMRA. Co-registration and subtraction of the two volume data was done using commercially available software. Image quality and the degree of arterial contamination of the three MRVs were compared. In the three MRVs, 19 pre-defined venous structures (14 dural sinuses and 5 cerebral veins) were evaluated. The signal-to-noise ratio (SNR) and contrast-to-noise ratio (CNR) of the three MRVs were also compared. Results: Single-phase contrast-enhanced MR venography showed better image quality (median score 4 in both reviewers) than did the other two MRVs (p < 0.001), whereas SMRV (median score 3 in both reviewers) and PCMRV (median score 3 in both reviewers) had similar image quality (p ${\geq}0.951$ ). SMRV (median score 0 in both reviewers) suppressed arterial signal better than did the other MRVs (median score 1 in CEMRV, median score 2 in PCMRV, both reviewers) (p < 0.001). The dural sinus score of SMRV (median and interquartile range [IQR] 48, 43-50 for reviewer 1, 47, 43-49 for reviewer 2) was significantly higher than for PCMRV (median and IQR 31, 25-34 for reviewer 1, 30, 23-32 for reviewer 2) (p < 0.01) and did not differ from that of CEMRV (median and IQR 50, 47-52 for reviewer 1, 49, 45-51 for reviewer 2) (p = 0.146 in reviewer 1 and 0.123 in reviewer 2). The SNR and CNR of SMRV (median and IQR 104.5, 83.1-121.2 and 104.1, 74.9-120.5, respectively) were between those of CEMRV (median and IQR 150.3, 111-182.6 and 148.4, 108-178.2) and PCMRV (median and IQR 59.4, 49.2-74.9 and 53.6, 43.8-69.2). Conclusion: Subtraction magnetic resonance venography is a promising MRV method, with acceptable image quality and good arterial suppression.

키워드

참고문헌

  1. Ayanzen RH, Bird CR, Keller PJ, McCully FJ, Theobald MR, Heiserman JE. Cerebral MR venography: normal anatomy and potential diagnostic pitfalls. AJNR Am J Neuroradiol 2000;21:74-78
  2. Liauw L, van Buchem MA, Spilt A, de Bruïne FT, van den Berg R, Hermans J, et al. MR angiography of the intracranial venous system. Radiology 2000;214:678-682 https://doi.org/10.1148/radiology.214.3.r00mr41678
  3. Dolic K, Siddiqui AH, Karmon Y, Marr K, Zivadinov R. The role of noninvasive and invasive diagnostic imaging techniques for detection of extra-cranial venous system anomalies and developmental variants. BMC Med 2013;11:155 https://doi.org/10.1186/1741-7015-11-155
  4. Meckel S, Reisinger C, Bremerich J, Damm D, Wolbers M, Engelter S, et al. Cerebral venous thrombosis: diagnostic accuracy of combined, dynamic and static, contrast-enhanced 4D MR venography. AJNR Am J Neuroradiol 2010;31:527-535 https://doi.org/10.3174/ajnr.A1869
  5. Zivadinov R, Lopez-Soriano A, Weinstock-Guttman B, Schirda CV, Magnano CR, Dolic K, et al. Use of MR venography for characterization of the extracranial venous system in patients with multiple sclerosis and healthy control subjects. Radiology 2011;258:562-570 https://doi.org/10.1148/radiol.10101387
  6. Meckel S, Glücker TM, Kretzschmar M, Scheffler K, Radü EW, Wetzel SG. Display of dural sinuses with time-resolved, contrast-enhanced three-dimensional MR venography. Cerebrovasc Dis 2008;25:217-224 https://doi.org/10.1159/000113859
  7. Yigit H, Turan A, Ergün E, Kosar P, Kosar U. Time-resolved MR angiography of the intracranial venous system: an alternative MR venography technique. Eur Radiol 2012;22:980-989 https://doi.org/10.1007/s00330-011-2330-0
  8. McTaggart RA, Fischbein NJ, Elkins CJ, Hsiao A, Cutalo MJ, Rosenberg J, et al. Extracranial venous drainage patterns in patients with multiple sclerosis and healthy controls. AJNR Am J Neuroradiol 2012;33:1615-1620 https://doi.org/10.3174/ajnr.A3097
  9. Rahman MT, Sethi SK, Utriainen DT, Hewett JJ, Haacke EM. A comparative study of magnetic resonance venography techniques for the evaluation of the internal jugular veins in multiple sclerosis patients. Magn Reson Imaging 2013;31:1668-1676 https://doi.org/10.1016/j.mri.2013.05.012
  10. Lim RP, Shapiro M, Wang EY, Law M, Babb JS, Rueff LE, et al. 3D time-resolved MR angiography (MRA) of the carotid arteries with time-resolved imaging with stochastic trajectories: comparison with 3D contrast-enhanced Bolus-Chase MRA and 3D time-of-flight MRA. AJNR Am J Neuroradiol 2008;29:1847-1854 https://doi.org/10.3174/ajnr.A1252
  11. Lee YJ, Laub G, Jung SL, Yoo WJ, Kim YJ, Ahn KJ, et al. Low-dose 3D time-resolved magnetic resonance angiography (MRA) of the supraaortic arteries: correlation with high spatial resolution 3D contrast-enhanced MRA. J Magn Reson Imaging 2011;33:71-76 https://doi.org/10.1002/jmri.22396
  12. Haider CR, Hu HH, Campeau NG, Huston J 3rd, Riederer SJ. 3D high temporal and spatial resolution contrast-enhanced MR angiography of the whole brain. Magn Reson Med 2008;60:749-760 https://doi.org/10.1002/mrm.21675
  13. Nael K, Fenchel M, Salamon N, Duckwiler GR, Laub G, Finn JP, et al. Three-dimensional cerebral contrast-enhanced magnetic resonance venography at 3.0 Tesla: initial results using highly accelerated parallel acquisition. Invest Radiol 2006;41:763-768 https://doi.org/10.1097/01.rli.0000236992.21065.04
  14. Lee YJ, Kim BS, Koo JS, Kim BY, Jang J, Choi HS, et al. Supra-aortic low-dose contrast-enhanced time-resolved magnetic resonance (MR) angiography at 3 T: comparison with time-of-flight MR angiography and high-resolution contrast-enhanced MR angiography. Acta Radiol 2015;56:673-680 https://doi.org/10.1177/0284185114538426
  15. Ruhl KM, Katoh M, Langer S, Mommertz G, Guenther RW, Niendorf T, et al. Time-resolved 3D MR angiography of the foot at 3 T in patients with peripheral arterial disease. AJR Am J Roentgenol 2008;190:W360-W364 https://doi.org/10.2214/AJR.07.2545
  16. Niendorf T, Sodickson DK. Parallel imaging in cardiovascular MRI: methods and applications. NMR Biomed 2006;19:325-341 https://doi.org/10.1002/nbm.1051
  17. Zivadinov R, Galeotti R, Hojnacki D, Menegatti E, Dwyer MG, Schirda C, et al. Value of MR venography for detection of internal jugular vein anomalies in multiple sclerosis: a pilot longitudinal study. AJNR Am J Neuroradiol 2011;32:938-946 https://doi.org/10.3174/ajnr.A2386
  18. Fera F, Bono F, Messina D, Gallo O, Lanza PL, Auteri W, et al. Comparison of different MR venography techniques for detecting transverse sinus stenosis in idiopathic intracranial hypertension. J Neurol 2005;252:1021-1025 https://doi.org/10.1007/s00415-005-0710-6
  19. Boetes C, Barentsz JO, Mus RD, van der Sluis RF, van Erning LJ, Hendriks JH, et al. MR characterization of suspicious breast lesions with a gadolinium-enhanced TurboFLASH subtraction technique. Radiology 1994;193:777-781 https://doi.org/10.1148/radiology.193.3.7972823
  20. Anxionnat R, Bracard S, Ducrocq X, Trousset Y, Launay L, Kerrien E, et al. Intracranial aneurysms: clinical value of 3D digital subtraction angiography in the therapeutic decision and endovascular treatment. Radiology 2001;218:799-808 https://doi.org/10.1148/radiology.218.3.r01mr09799
  21. Sugahara T, Korogi Y, Nakashima K, Hamatake S, Honda S, Takahashi M. Comparison of 2D and 3D digital subtraction angiography in evaluation of intracranial aneurysms. AJNR Am J Neuroradiol 2002;23:1545-1552
  22. Uemura M, Miyagawa M, Yasuhara Y, Murakami T, Ikura H, Sakamoto K, et al. Clinical evaluation of pulmonary nodules with dual-exposure dual-energy subtraction chest radiography. Radiat Med 2005;23:391-397
  23. Chilcote WA, Modic MT, Pavlicek WA, Little JR, Furlan AJ, Duchesneau PM, et al. Digital subtraction angiography of the carotid arteries: a comparative study in 100 patients. Radiology 1981;139:287-295 https://doi.org/10.1148/radiology.139.2.7012921
  24. Acar M, Degirmenci B, Yucel A, Albayrak R, Haktanir A. An evaluation of internal carotid artery and cerebral blood flow volume using color duplex sonography in patients with vertebral artery hypoplasia. Eur J Radiol 2005;53:450-453 https://doi.org/10.1016/j.ejrad.2004.05.010
  25. Ford MD, Alperin N, Lee SH, Holdsworth DW, Steinman DA. Characterization of volumetric flow rate waveforms in the normal internal carotid and vertebral arteries. Physiol Meas 2005;26:477-488 https://doi.org/10.1088/0967-3334/26/4/013
  26. Jung H, Sung K, Nayak KS, Kim EY, Ye JC. k-t FOCUSS: a general compressed sensing framework for high resolution dynamic MRI. Magn Reson Med 2009;61:103-116 https://doi.org/10.1002/mrm.21757
  27. Rapacchi S, Natsuaki Y, Plotnik A, Gabriel S, Laub G, Finn JP, et al. Reducing view-sharing using compressed sensing in time-resolved contrast-enhanced magnetic resonance angiography. Magn Reson Med 2015;74:474-481 https://doi.org/10.1002/mrm.25414
  28. Andeweg J. The anatomy of collateral venous flow from the brain and its value in aetiological interpretation of intracranial pathology. Neuroradiology 1996;38:621-628 https://doi.org/10.1007/s002340050321
  29. Kudo K, Terae S, Ishii A, Omatsu T, Asano T, Tha KK, et al. Physiologic change in flow velocity and direction of dural venous sinuses with respiration: MR venography and flow analysis. AJNR Am J Neuroradiol 2004;25:551-557
  30. Schaller B. Physiology of cerebral venous blood flow: from experimental data in animals to normal function in humans. Brain Res Brain Res Rev 2004;46:243-260 https://doi.org/10.1016/j.brainresrev.2004.04.005
  31. Kopelman M, Glik A, Greenberg S, Shelef I. Intracranial nonjugular venous pathways: a possible compensatory drainage mechanism. AJNR Am J Neuroradiol 2013;34:1348-1352 https://doi.org/10.3174/ajnr.A3402