Literature DB >> 16088876

Microscopic magnetic resonance elastography (microMRE).

Shadi F Othman1, Huihui Xu, Thomas J Royston, Richard L Magin.   

Abstract

Magnetic resonance elastography (MRE) was extended to the microscopic scale to image low-frequency acoustic shear waves (typically less than 1 kHz) in soft gels and soft biological tissues with high spatial resolution (34 micromx34 micromx500 microm). Microscopic MRE (microMRE) was applied to agarose gel phantoms, frog oocytes, and tissue-engineered adipogenic and osteogenic constructs. Analysis of the low-amplitude shear wave pattern in the samples allowed the material stiffness and viscous loss properties (complex shear stiffness) to be identified with high spatial resolution. microMRE experiments were conducted at 11.74 T in a 56-mm vertical bore magnet with a 10 mm diameterx75 mm length cylindrical space available for the elastography imaging system. The acoustic signals were generated at 550-585 Hz using a piezoelectric transducer and high capacitive loading amplifier. Shear wave motion was applied in synchrony with the MR pulse sequence. The field of view (FOV) ranged from 4 to 14 mm for a typical slice thickness of 0.5 mm. Increasing the agarose gel concentration resulted in an increase in shear elasticity and shear viscosity. Shear wave motion propagated through the frog oocyte nucleus, enabling the measurement of its shear stiffness, and in vitro shear wave images displayed contrast between adipogenic and osteogenic tissue-engineered constructs. Further development of microMRE should enable its use in characterizing stiffer materials (e.g., polymers, composites, articular cartilage) and assessing with high resolution the mechanical properties of developing tissues. Copyright (c) 2005 Wiley-Liss, Inc.

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Year:  2005        PMID: 16088876     DOI: 10.1002/mrm.20584

Source DB:  PubMed          Journal:  Magn Reson Med        ISSN: 0740-3194            Impact factor:   4.668


  27 in total

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2.  Magnetic resonance elastography methodology for the evaluation of tissue engineered construct growth.

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5.  Surface response of a fractional order viscoelastic halfspace to surface and subsurface sources.

Authors:  F Can Meral; Thomas J Royston; Richard L Magin
Journal:  J Acoust Soc Am       Date:  2009-12       Impact factor: 1.840

6.  Measurement of the dynamic shear modulus of mouse brain tissue in vivo by magnetic resonance elastography.

Authors:  Stefan M Atay; Christopher D Kroenke; Arash Sabet; Philip V Bayly
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Review 7.  Magnetic resonance elastography: a general overview of its current and future applications in brain imaging.

Authors:  Antonio Di Ieva; Fabio Grizzi; Elisa Rognone; Zion Tsz Ho Tse; Tassanai Parittotokkaporn; Ferdinando Rodriguez Y Baena; Manfred Tschabitscher; Christian Matula; Siegfrid Trattnig; Riccardo Rodriguez Y Baena
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8.  Rayleigh-Lamb wave propagation on a fractional order viscoelastic plate.

Authors:  F Can Meral; Thomas J Royston; Richard L Magin
Journal:  J Acoust Soc Am       Date:  2011-02       Impact factor: 1.840

9.  Mechanical analysis of an axially symmetric cylindrical phantom with a spherical heterogeneity for MR elastography.

Authors:  Benjamin L Schwartz; Ziying Yin; Richard L Magin
Journal:  Phys Med Biol       Date:  2016-08-31       Impact factor: 3.609

10.  Long-term in vivo imaging of viscoelastic properties of the mouse brain after controlled cortical impact.

Authors:  Thomas Boulet; Matthew L Kelso; Shadi F Othman
Journal:  J Neurotrauma       Date:  2013-08-01       Impact factor: 5.269

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