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Motion‐compensated b‐tensor encoding for in vivo cardiac diffusion‐weighted imaging

Motion is a major confound in diffusion‐weighted imaging (DWI) in the body, and it is a common cause of image artefacts. The effects are particularly severe in cardiac applications, due to the nonrigid cyclical deformation of the myocardium. Spin echo‐based DWI commonly employs gradient moment‐nulli...

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Autores principales: Lasič, Samo, Szczepankiewicz, Filip, Dall'Armellina, Erica, Das, Arka, Kelly, Christopher, Plein, Sven, Schneider, Jürgen E., Nilsson, Markus, Teh, Irvin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6980347/
https://www.ncbi.nlm.nih.gov/pubmed/31765063
http://dx.doi.org/10.1002/nbm.4213
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author Lasič, Samo
Szczepankiewicz, Filip
Dall'Armellina, Erica
Das, Arka
Kelly, Christopher
Plein, Sven
Schneider, Jürgen E.
Nilsson, Markus
Teh, Irvin
author_facet Lasič, Samo
Szczepankiewicz, Filip
Dall'Armellina, Erica
Das, Arka
Kelly, Christopher
Plein, Sven
Schneider, Jürgen E.
Nilsson, Markus
Teh, Irvin
author_sort Lasič, Samo
collection PubMed
description Motion is a major confound in diffusion‐weighted imaging (DWI) in the body, and it is a common cause of image artefacts. The effects are particularly severe in cardiac applications, due to the nonrigid cyclical deformation of the myocardium. Spin echo‐based DWI commonly employs gradient moment‐nulling techniques to desensitise the acquisition to velocity and acceleration, ie, nulling gradient moments up to the 2nd order (M2‐nulled). However, current M2‐nulled DWI scans are limited to encode diffusion along a single direction at a time. We propose a method for designing b‐tensors of arbitrary shapes, including planar, spherical, prolate and oblate tensors, while nulling gradient moments up to the 2nd order and beyond. The design strategy comprises initialising the diffusion encoding gradients in two encoding blocks about the refocusing pulse, followed by appropriate scaling and rotation, which further enables nulling undesired effects of concomitant gradients. Proof‐of‐concept assessment of in vivo mean diffusivity (MD) was performed using linear and spherical tensor encoding (LTE and STE, respectively) in the hearts of five healthy volunteers. The results of the M2‐nulled STE showed that (a) the sequence was robust to cardiac motion, and (b) MD was higher than that acquired using standard M2‐nulled LTE, where diffusion‐weighting was applied in three orthogonal directions, which may be attributed to the presence of restricted diffusion and microscopic diffusion anisotropy. Provided adequate signal‐to‐noise ratio, STE could significantly shorten estimation of MD compared with the conventional LTE approach. Importantly, our theoretical analysis and the proposed gradient waveform design may be useful in microstructure imaging beyond diffusion tensor imaging where the effects of motion must be suppressed.
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spelling pubmed-69803472020-02-10 Motion‐compensated b‐tensor encoding for in vivo cardiac diffusion‐weighted imaging Lasič, Samo Szczepankiewicz, Filip Dall'Armellina, Erica Das, Arka Kelly, Christopher Plein, Sven Schneider, Jürgen E. Nilsson, Markus Teh, Irvin NMR Biomed Research Articles Motion is a major confound in diffusion‐weighted imaging (DWI) in the body, and it is a common cause of image artefacts. The effects are particularly severe in cardiac applications, due to the nonrigid cyclical deformation of the myocardium. Spin echo‐based DWI commonly employs gradient moment‐nulling techniques to desensitise the acquisition to velocity and acceleration, ie, nulling gradient moments up to the 2nd order (M2‐nulled). However, current M2‐nulled DWI scans are limited to encode diffusion along a single direction at a time. We propose a method for designing b‐tensors of arbitrary shapes, including planar, spherical, prolate and oblate tensors, while nulling gradient moments up to the 2nd order and beyond. The design strategy comprises initialising the diffusion encoding gradients in two encoding blocks about the refocusing pulse, followed by appropriate scaling and rotation, which further enables nulling undesired effects of concomitant gradients. Proof‐of‐concept assessment of in vivo mean diffusivity (MD) was performed using linear and spherical tensor encoding (LTE and STE, respectively) in the hearts of five healthy volunteers. The results of the M2‐nulled STE showed that (a) the sequence was robust to cardiac motion, and (b) MD was higher than that acquired using standard M2‐nulled LTE, where diffusion‐weighting was applied in three orthogonal directions, which may be attributed to the presence of restricted diffusion and microscopic diffusion anisotropy. Provided adequate signal‐to‐noise ratio, STE could significantly shorten estimation of MD compared with the conventional LTE approach. Importantly, our theoretical analysis and the proposed gradient waveform design may be useful in microstructure imaging beyond diffusion tensor imaging where the effects of motion must be suppressed. John Wiley and Sons Inc. 2019-11-25 2020-02 /pmc/articles/PMC6980347/ /pubmed/31765063 http://dx.doi.org/10.1002/nbm.4213 Text en © 2019 The Authors. NMR in Biomedicine published by John Wiley & Sons Ltd This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Lasič, Samo
Szczepankiewicz, Filip
Dall'Armellina, Erica
Das, Arka
Kelly, Christopher
Plein, Sven
Schneider, Jürgen E.
Nilsson, Markus
Teh, Irvin
Motion‐compensated b‐tensor encoding for in vivo cardiac diffusion‐weighted imaging
title Motion‐compensated b‐tensor encoding for in vivo cardiac diffusion‐weighted imaging
title_full Motion‐compensated b‐tensor encoding for in vivo cardiac diffusion‐weighted imaging
title_fullStr Motion‐compensated b‐tensor encoding for in vivo cardiac diffusion‐weighted imaging
title_full_unstemmed Motion‐compensated b‐tensor encoding for in vivo cardiac diffusion‐weighted imaging
title_short Motion‐compensated b‐tensor encoding for in vivo cardiac diffusion‐weighted imaging
title_sort motion‐compensated b‐tensor encoding for in vivo cardiac diffusion‐weighted imaging
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6980347/
https://www.ncbi.nlm.nih.gov/pubmed/31765063
http://dx.doi.org/10.1002/nbm.4213
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