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MR Elastography at 1 Hz of Gelatin Phantoms Using 3D or 4D Acquisition

Overview
Journal J Magn Reson
Publisher Elsevier
Date 2018 Sep 22
PMID 30241018
Citations 6
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Abstract

Magnetic Resonance Elastography (MRE) detects induced periodic motions in biological tissues allowing maps of tissue mechanical properties to be derived. In-vivo MRE is commonly performed at frequencies of 30-100 Hz using external actuation, however, using cerebro-vascular pulsation at 1 Hz as a form of intrinsic actuation (IA-MRE) eliminates the need for external motion sources and simplifies data acquisition. In this study a hydraulic actuation system was developed to drive 1 Hz motions in gelatin as a tool for investigating the performance limits of IA-MRE image reconstruction under controlled conditions. Quantitative flow (QFLOW) MR techniques were used to phase encode 1 Hz motions as a function of gradient direction using 3D or 4D acquisition; 4D acquisition was twice as fast and yielded comparable motion field and concomitant image reconstruction results provided the motion signal was sufficiently strong. Per voxel motion noise floor corresponded to a displacement amplitude of about 20-30 μm. Signal to noise ratio (SNR) was 94 ± 17 for 3D and dropped to 69 ± 10 for the faster 4D acquisition, but yielded octahedral shear stress and shear modulus maps of high quality that differed by only about 20% on average. QFLOW measurements in gel phantoms were improved significantly by adding Mn(II) to mimic relaxation rates found in brain. Overall, the hydraulic 1 Hz actuation system when coupled with 4D sequence acquisition produced a fast reliable approach for future IA-MRE phantom evaluation and contrast detail studies needed to benchmark imaging performance.

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References
1.
McGarry M, Van Houten E, Perrinez P, Pattison A, Weaver J, Paulsen K . An octahedral shear strain-based measure of SNR for 3D MR elastography. Phys Med Biol. 2011; 56(13):N153-64. PMC: 3172714. DOI: 10.1088/0031-9155/56/13/N02. View

2.
Kumar S, Weaver V . Mechanics, malignancy, and metastasis: the force journey of a tumor cell. Cancer Metastasis Rev. 2009; 28(1-2):113-27. PMC: 2658728. DOI: 10.1007/s10555-008-9173-4. View

3.
Konofagou E, Ophir J . A new elastographic method for estimation and imaging of lateral displacements, lateral strains, corrected axial strains and Poisson's ratios in tissues. Ultrasound Med Biol. 1998; 24(8):1183-99. DOI: 10.1016/s0301-5629(98)00109-4. View

4.
Chen J, Yin M, Glaser K, Talwalkar J, Ehman R . MR Elastography of Liver Disease: State of the Art. Appl Radiol. 2015; 42(4):5-12. PMC: 4564016. View

5.
Hiscox L, Johnson C, Barnhill E, McGarry M, Huston J, van Beek E . Magnetic resonance elastography (MRE) of the human brain: technique, findings and clinical applications. Phys Med Biol. 2016; 61(24):R401-R437. DOI: 10.1088/0031-9155/61/24/R401. View