Literature DB >> 15236367

Evaluation of renal parenchymal disease in a rat model with magnetic resonance elastography.

Nihar S Shah1, Scott A Kruse, Donna J Lager, Gerard Farell-Baril, John C Lieske, Bernard F King, Richard L Ehman.   

Abstract

Alterations in the mechanical properties or "hardness" of tissues allow physicians to detect disease by palpation. Recently, attempts have been made to quantitate and image these tissue properties with the use of magnetic resonance elastography (MRE). This technique has been validated in ex vivo specimens, including kidney, breast, and prostate. In this study, in vivo MRE imaging of rat renal cortex is demonstrated and validated with a disease model that will facilitate further studies. Normal rats and rats with nephrocalcinosis induced with either 2 or 4 weeks of ethylene glycol exposure were studied with MRE. Histology in the diseased rats documented the presence of nephrocalcinosis. MRE measurements and images of shear stiffness were highly reproducible in individual rats. The shear stiffness of the renal cortex in normal rats was 3.87 kPa (95% CI 2.84-4.90 kPa). The shear stiffness increased to 5.02 kPa (95% CI 3.34-6.70 kPa) after 2 weeks of exposure, and to 6.49 kPa (95% CI 4.84-8.14 kPa) after 4 weeks of exposure (P = 0.0302, alpha < 0.05). MRE is capable of detecting alterations in the tissue mechanical properties of kidneys in vivo. It is a promising noninvasive technique that might have pathologic and prognostic significance. Copyright 2004 Wiley-Liss, Inc.

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Year:  2004        PMID: 15236367     DOI: 10.1002/mrm.20101

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


  23 in total

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2.  Magnetic Resonance Elastography.

Authors:  Daniel V Litwiller; Yogesh K Mariappan; Richard L Ehman
Journal:  Curr Med Imaging Rev       Date:  2012

3.  Magnetic resonance elastography in the detection of hepatorenal syndrome in patients with cirrhosis and ascites.

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Review 4.  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
Journal:  Neurosurg Rev       Date:  2010-02-27       Impact factor: 3.042

5.  Elasticity mapping of murine abdominal organs in vivo using harmonic motion imaging (HMI).

Authors:  Thomas Payen; Carmine F Palermo; Stephen A Sastra; Hong Chen; Yang Han; Kenneth P Olive; Elisa E Konofagou
Journal:  Phys Med Biol       Date:  2016-07-12       Impact factor: 3.609

6.  A comprehensive computational model of sound transmission through the porcine lung.

Authors:  Zoujun Dai; Ying Peng; Brian M Henry; Hansen A Mansy; Richard H Sandler; Thomas J Royston
Journal:  J Acoust Soc Am       Date:  2014-09       Impact factor: 1.840

7.  Comparison of Poroviscoelastic Models for Sound and Vibration in the Lungs.

Authors:  Zoujun Dai; Ying Peng; Hansen A Mansy; Richard H Sandler; Thomas J Royston
Journal:  J Vib Acoust       Date:  2014-07-25       Impact factor: 1.583

Review 8.  Abdominal magnetic resonance elastography.

Authors:  Meng Yin; Jun Chen; Kevin J Glaser; Jayant A Talwalkar; Richard L Ehman
Journal:  Top Magn Reson Imaging       Date:  2009-04

Review 9.  New and Emerging Applications of Magnetic Resonance Elastography of Other Abdominal Organs.

Authors:  Jin Wang; Ying Deng; Danielle Jondal; David M Woodrum; Yu Shi; Meng Yin; Sudhakar K Venkatesh
Journal:  Top Magn Reson Imaging       Date:  2018-10

10.  Shearwave dispersion ultrasound vibrometry (SDUV) on swine kidney.

Authors:  Carolina Amador; Matthew W Urban; Shigao Chen; James F Greenleaf
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2011-12       Impact factor: 2.725

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