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Published in: European Radiology 12/2008

01-12-2008 | Magnetic Resonance

Peripheral contrast-enhanced MR angiography at 3.0T, improved spatial resolution and low dose contrast: initial clinical experience

Authors: Kambiz Nael, Mayil Krishnam, Ali Nael, Anthony Ton, Stefan G. Ruehm, J. Paul Finn

Published in: European Radiology | Issue 12/2008

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Abstract

To investigate a high spatial resolution peripheral contrast-enhanced MR angiography (CE-MRA) protocol, applying a dedicated multi-channel array coil and accelerated parallel acquisition at 3.0T in evaluation of patients with peripheral vascular disease. Twenty patients with peripheral vascular disease underwent multi-station high spatial resolution peripheral CE-MRA at 3T. The image quality, presence of venous contamination, image noise, and artifact were evaluated by 2 radiologists independently. Assessment of arterial disease for 540 arterial segments was performed, and findings were correlated with conventional catheter angiography in 10 patients. All studies were yielded high diagnostic image quality. Venous contamination and artifact were minimal and never interfered with diagnosis. Sixty seven arterial segments with significant stenoses (>0%) were detected by observers with excellent interobserver agreement (κ = 0.82; 95% CI: 0.76, 0.88). There was a significant correlation between CE-MRA and conventional angiography (Rs = 0.91 and 0.94 for reader 1 and 2, respectively) for the assessment of the degree of stenosis. Higher available SNR at 3T in combination with multi-coil technology and accelerated parallel acquisition, result in acquisition of nearly isotropic submillimeter 3D voxels throughout the entire peripheral arterial tree with diagnostic image quality and favorable comparative analysis with catheter angiography.
Literature
1.
go back to reference Goyen M, Herborn CU, Kroger K, Ruehm SG, Debatin JF (2006) Total-body 3D magnetic resonance angiography influences the management of patients with peripheral arterial occlusive disease. Eur Radiol 16(3):685–691PubMedCrossRef Goyen M, Herborn CU, Kroger K, Ruehm SG, Debatin JF (2006) Total-body 3D magnetic resonance angiography influences the management of patients with peripheral arterial occlusive disease. Eur Radiol 16(3):685–691PubMedCrossRef
2.
go back to reference Ruehm SG, Goyen M, Barkhausen J et al (2001) Rapid magnetic resonance angiography for detection of atherosclerosis. Lancet 357(9262):1086–1091PubMedCrossRef Ruehm SG, Goyen M, Barkhausen J et al (2001) Rapid magnetic resonance angiography for detection of atherosclerosis. Lancet 357(9262):1086–1091PubMedCrossRef
3.
go back to reference Griswold MA, Jakob PM, Heidemann RM et al (2002) Generalized autocalibrating partially parallel acquisitions (GRAPPA). Magn Reson Med 47(6):1202–1210PubMedCrossRef Griswold MA, Jakob PM, Heidemann RM et al (2002) Generalized autocalibrating partially parallel acquisitions (GRAPPA). Magn Reson Med 47(6):1202–1210PubMedCrossRef
4.
go back to reference Pruessmann KP, Weiger M, Scheidegger MB, Boesiger P (1999) SENSE: sensitivity encoding for fast MRI. Magn Reson Med 42(5):952–962PubMedCrossRef Pruessmann KP, Weiger M, Scheidegger MB, Boesiger P (1999) SENSE: sensitivity encoding for fast MRI. Magn Reson Med 42(5):952–962PubMedCrossRef
5.
go back to reference Sodickson DK, Manning WJ (1997) Simultaneous acquisition of spatial harmonics (SMASH): fast imaging with radiofrequency coil arrays. Magn Reson Med 38(4):591–603PubMedCrossRef Sodickson DK, Manning WJ (1997) Simultaneous acquisition of spatial harmonics (SMASH): fast imaging with radiofrequency coil arrays. Magn Reson Med 38(4):591–603PubMedCrossRef
6.
go back to reference Fenchel M, Scheule AM, Stauder NI et al (2006) Atherosclerotic disease: whole-body cardiovascular imaging with MR system with 32 receiver channels and total-body surface coil technology–initial clinical results. Radiology 238(1):280–291PubMedCrossRef Fenchel M, Scheule AM, Stauder NI et al (2006) Atherosclerotic disease: whole-body cardiovascular imaging with MR system with 32 receiver channels and total-body surface coil technology–initial clinical results. Radiology 238(1):280–291PubMedCrossRef
7.
go back to reference Kramer H, Schoenberg SO, Nikolaou K et al (2005) Cardiovascular screening with parallel imaging techniques and a whole-body MR imager. Radiology 236(1):300–310PubMedCrossRef Kramer H, Schoenberg SO, Nikolaou K et al (2005) Cardiovascular screening with parallel imaging techniques and a whole-body MR imager. Radiology 236(1):300–310PubMedCrossRef
8.
go back to reference Willinek WA, Bayer T, Gieseke J et al (2007) High spatial resolution contrast-enhanced MR angiography of the supraaortic arteries using the quadrature body coil at 3.0T: a feasibility study. Eur Radiol 17(3):618–625PubMedCrossRef Willinek WA, Bayer T, Gieseke J et al (2007) High spatial resolution contrast-enhanced MR angiography of the supraaortic arteries using the quadrature body coil at 3.0T: a feasibility study. Eur Radiol 17(3):618–625PubMedCrossRef
9.
go back to reference Nael K, Villablanca JP, Pope WB et al (2007) Supraaortic arteries: contrast-enhanced MR angiography at 3.0 T–highly accelerated parallel acquisition for improved spatial resolution over an extended field of view. Radiology 242(2):600–609PubMedCrossRef Nael K, Villablanca JP, Pope WB et al (2007) Supraaortic arteries: contrast-enhanced MR angiography at 3.0 T–highly accelerated parallel acquisition for improved spatial resolution over an extended field of view. Radiology 242(2):600–609PubMedCrossRef
10.
go back to reference Runge VM, Biswas J, Wintersperger BJ et al (2006) The efficacy of gadobenate dimeglumine (Gd-BOPTA) at 3 Tesla in brain magnetic resonance imaging: comparison to 1.5 Tesla and a standard gadolinium chelate using a rat brain tumor model. Invest Radiol 41(3):244–248PubMedCrossRef Runge VM, Biswas J, Wintersperger BJ et al (2006) The efficacy of gadobenate dimeglumine (Gd-BOPTA) at 3 Tesla in brain magnetic resonance imaging: comparison to 1.5 Tesla and a standard gadolinium chelate using a rat brain tumor model. Invest Radiol 41(3):244–248PubMedCrossRef
11.
go back to reference Habibi R, Krishnam MS, Lohan DG et al (2007) High-spatial-resolution lower extremity magnetic resonance angiography at 3.0 Tesla: a contrast dose comparison study. 93rd annual meeting of the Radiological Society of North America, Chicago, IL Habibi R, Krishnam MS, Lohan DG et al (2007) High-spatial-resolution lower extremity magnetic resonance angiography at 3.0 Tesla: a contrast dose comparison study. 93rd annual meeting of the Radiological Society of North America, Chicago, IL
12.
13.
go back to reference Reid SK, Pagan-Marin HR, Menzoian JO, Woodson J, Yucel EK (2001) Contrast-enhanced moving-table MR angiography: prospective comparison to catheter arteriography for treatment planning in peripheral arterial occlusive disease. J Vasc Interv Radiol 12(1):45–53PubMedCrossRef Reid SK, Pagan-Marin HR, Menzoian JO, Woodson J, Yucel EK (2001) Contrast-enhanced moving-table MR angiography: prospective comparison to catheter arteriography for treatment planning in peripheral arterial occlusive disease. J Vasc Interv Radiol 12(1):45–53PubMedCrossRef
14.
go back to reference Kramer U, Nael K, Laub G et al (2006) High-resolution magnetic resonance angiography of the renal arteries using parallel imaging acquisition techniques at 3.0 T: initial experience. Invest Radiol 41(2):125–132PubMedCrossRef Kramer U, Nael K, Laub G et al (2006) High-resolution magnetic resonance angiography of the renal arteries using parallel imaging acquisition techniques at 3.0 T: initial experience. Invest Radiol 41(2):125–132PubMedCrossRef
15.
go back to reference Nael K, Saleh R, Lee MH et al (2006) High-spatial-resolution contrast-enhanced MR angiography of abdominal arteries with parallel acquisition at 3.0 T: initial experience in 32 patients. AJR Am J Roentgenol 187:1–15CrossRef Nael K, Saleh R, Lee MH et al (2006) High-spatial-resolution contrast-enhanced MR angiography of abdominal arteries with parallel acquisition at 3.0 T: initial experience in 32 patients. AJR Am J Roentgenol 187:1–15CrossRef
16.
go back to reference de Zwart JA, Ledden PJ, van Gelderen P et al (2004) Signal-to-noise ratio and parallel imaging performance of a 16-channel receive-only brain coil array at 3.0 Tesla. Magn Reson Med 51(1):22–26PubMedCrossRef de Zwart JA, Ledden PJ, van Gelderen P et al (2004) Signal-to-noise ratio and parallel imaging performance of a 16-channel receive-only brain coil array at 3.0 Tesla. Magn Reson Med 51(1):22–26PubMedCrossRef
17.
go back to reference Weiger M, Pruessmann KP, Leussler C, Roschmann P, Boesiger P (2001) Specific coil design for SENSE: a six-element cardiac array. Magn Reson Med 45(3):495–504PubMedCrossRef Weiger M, Pruessmann KP, Leussler C, Roschmann P, Boesiger P (2001) Specific coil design for SENSE: a six-element cardiac array. Magn Reson Med 45(3):495–504PubMedCrossRef
18.
go back to reference Wasser MN, Westenberg J, van der Hulst VP et al (1997) Hemodynamic significance of renal artery stenosis: digital subtraction angiography versus systolically gated three-dimensional phase-contrast MR angiography. Radiology 202(2):333–338PubMed Wasser MN, Westenberg J, van der Hulst VP et al (1997) Hemodynamic significance of renal artery stenosis: digital subtraction angiography versus systolically gated three-dimensional phase-contrast MR angiography. Radiology 202(2):333–338PubMed
19.
go back to reference Griswold MA, Kannengiesser S, Heidemann RM, Wang J, Jakob PM (2004) Field-of-view limitations in parallel imaging. Magn Reson Med 52(5):1118–1126PubMedCrossRef Griswold MA, Kannengiesser S, Heidemann RM, Wang J, Jakob PM (2004) Field-of-view limitations in parallel imaging. Magn Reson Med 52(5):1118–1126PubMedCrossRef
20.
21.
go back to reference Kangarlu A, Baertlein BA, Lee R et al (1999) Dielectric resonance phenomena in ultra high field MRI. J Comput Assist Tomogr 23(6):821–831PubMedCrossRef Kangarlu A, Baertlein BA, Lee R et al (1999) Dielectric resonance phenomena in ultra high field MRI. J Comput Assist Tomogr 23(6):821–831PubMedCrossRef
22.
go back to reference Ibrahim TS, Lee R, Abduljalil AM, Baertlein BA, Robitaille PM (2001) Dielectric resonances and B(1) field inhomogeneity in UHFMRI: computational analysis and experimental findings. Magn Reson Imaging 19(2):219–226PubMedCrossRef Ibrahim TS, Lee R, Abduljalil AM, Baertlein BA, Robitaille PM (2001) Dielectric resonances and B(1) field inhomogeneity in UHFMRI: computational analysis and experimental findings. Magn Reson Imaging 19(2):219–226PubMedCrossRef
23.
go back to reference Morasch MD, Collins J, Pereles FS et al (2003) Lower extremity stepping-table magnetic resonance angiography with multilevel contrast timing and segmented contrast infusion. J Vasc Surg 37(1):62–71PubMedCrossRef Morasch MD, Collins J, Pereles FS et al (2003) Lower extremity stepping-table magnetic resonance angiography with multilevel contrast timing and segmented contrast infusion. J Vasc Surg 37(1):62–71PubMedCrossRef
24.
go back to reference Sadowski EA, Bennett LK, Chan MR et al (2007) Nephrogenic systemic fibrosis: risk factors and incidence estimation. Radiology 243(1):148–157PubMedCrossRef Sadowski EA, Bennett LK, Chan MR et al (2007) Nephrogenic systemic fibrosis: risk factors and incidence estimation. Radiology 243(1):148–157PubMedCrossRef
Metadata
Title
Peripheral contrast-enhanced MR angiography at 3.0T, improved spatial resolution and low dose contrast: initial clinical experience
Authors
Kambiz Nael
Mayil Krishnam
Ali Nael
Anthony Ton
Stefan G. Ruehm
J. Paul Finn
Publication date
01-12-2008
Publisher
Springer-Verlag
Published in
European Radiology / Issue 12/2008
Print ISSN: 0938-7994
Electronic ISSN: 1432-1084
DOI
https://doi.org/10.1007/s00330-008-1074-y

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