Literature DB >> 24925441

MR diffusion tensor imaging of normal kidneys.

Wen-juan Wang1, Margaret H Pui, Yan Guo, Xiao-shu Hu, Huan-jun Wang, Dong Yang.   

Abstract

PURPOSE: To assess the feasibility of diffusion tensor imaging (DTI) of normal kidneys and the influence of hydration state.
MATERIALS AND METHODS: Ten healthy volunteers underwent renal DTI after fasting for 12 hours and 4 hours, without fasting, and following water diuresis. Medullary and cortical apparent diffusion coefficient (ADC) and fractional anisotropy (FA) values were measured and compared in the four different states of hydration. DTI was performed with a 3T magnetic resonance imaging (MRI) system using fat-saturated single-shot spin-echo echo planar imaging sequence.
RESULTS: ADC of normal cortex (2.387 ± 0.081 × 10(-3) mm(2) /s) was significantly higher (t = 20.126, P = 0) than that of medulla (1.990 ± 0.063 × 10(-3) mm(2) /s). The FA value of normal cortex (0.282 ± 0.017) was significantly lower (t = -42.713, P = 0) than that of medulla (0.447 ± 0.022). The ADC and FA values of the left renal cortex (2.404 ± 0.082 × 10(-3) mm(2) /s, 0.282 ± 0.017) and medulla (2.002 ± 0.081 × 10(-3) mm(2) /s, 0.452 ± 0.024) were not significantly different (P > 0.05) from those of right renal cortex (2.369 ± 0.080 × 10(-3) mm(2) /s, 0.283 ± 0.018) and medulla (1.978 ± 0.039 × 10(-3) mm(2) /s, 0.443 ± 0.019). Values for ADC (×10(-3) mm(2) /s) and FA in the 12-hour fasting, 4-hour fasting, nonfasting, and water diuresis states were 2.372 ± 0.095 and 0.278 ± 0.018, 2.387 ± 0.081 and 0.282 ± 0.017, 2.416 ± 0.051 and 0.279 ± 0.023, 2.421 ± 0.068, and 0.270 ± 0.021, respectively, in cortex, 1.972 ± 0.084 and 0.438 ± 0.014, 1.990 ± 0.063 and 0.447 ± 0.022, 2.021 ± 0.081 and 0.450 ± 0.031, 2.016 ± 0.076 and 0.449 ± 0.028, respectively, in medulla. The ADC and FA values in different hydration states were not significantly different (P > 0.05).
CONCLUSION: DTI of normal kidneys is feasible with reproducible ADC and FA values independent of hydration states.
© 2013 Wiley Periodicals, Inc.

Entities:  

Keywords:  diffusion tensor imaging; diffusion-weighted imaging; kidney; magnetic resonance

Mesh:

Year:  2013        PMID: 24925441     DOI: 10.1002/jmri.24450

Source DB:  PubMed          Journal:  J Magn Reson Imaging        ISSN: 1053-1807            Impact factor:   4.813


  9 in total

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Authors:  Anna Caroli; Moritz Schneider; Iris Friedli; Alexandra Ljimani; Sophie De Seigneux; Peter Boor; Latha Gullapudi; Isma Kazmi; Iosif A Mendichovszky; Mike Notohamiprodjo; Nicholas M Selby; Harriet C Thoeny; Nicolas Grenier; Jean-Paul Vallée
Journal:  Nephrol Dial Transplant       Date:  2018-09-01       Impact factor: 5.992

7.  Diffusion tensor imaging for the study of early renal dysfunction in patients affected by bardet-biedl syndrome.

Authors:  Pasquale Borrelli; Miriam Zacchia; Carlo Cavaliere; Luca Basso; Marco Salvatore; Giovambattista Capasso; Marco Aiello
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8.  High-resolution diffusion tensor imaging of the human kidneys using a free-breathing, multi-slice, targeted field of view approach.

Authors:  Rachel W Chan; Constantin Von Deuster; Christian T Stoeck; Jack Harmer; Shonit Punwani; Navin Ramachandran; Sebastian Kozerke; David Atkinson
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Authors:  Stefano Palmucci; Giuseppina Cappello; Giancarlo Attinà; Pietro Valerio Foti; Rita Olivia Anna Siverino; Federica Roccasalva; Marina Piccoli; Nunziata Sinagra; Pietro Milone; Massimiliano Veroux; Giovanni Carlo Ettorre
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  9 in total

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