3D multi-slab diffusion-weighted readout-segmented EPI with real-time cardiac-reordered k-space acquisition

<p><strong>Purpose:</strong> The aim of this study was to develop, implement, and demonstrate a three‐dimensional (3D) extension of the readout‐segmented echo‐planar imaging (rs‐EPI) sequence for diffusion imaging.</p> <p><strong>Theory and Methods:</strong>...

Full description

Bibliographic Details
Main Authors: Frost, R, Miller, K, Tijssen, R, Porter, D, Jezzard, P
Format: Journal article
Published: 2013
_version_ 1826259496758935552
author Frost, R
Miller, K
Tijssen, R
Porter, D
Jezzard, P
author_facet Frost, R
Miller, K
Tijssen, R
Porter, D
Jezzard, P
author_sort Frost, R
collection OXFORD
description <p><strong>Purpose:</strong> The aim of this study was to develop, implement, and demonstrate a three‐dimensional (3D) extension of the readout‐segmented echo‐planar imaging (rs‐EPI) sequence for diffusion imaging.</p> <p><strong>Theory and Methods:</strong> Potential k‐space acquisition schemes were assessed by simulating their associated spatial point spread functions. Motion‐induced phase artifacts were also simulated to test navigator corrections and a real‐time reordering of the k‐space acquisition relative to the cardiac cycle. The cardiac reordering strategy preferentially chooses readout segments closer to the center of 3D k‐space during diastole. Motion‐induced phase artifacts were quantified by calculating the voxel‐wise temporal variation in a set of repeated diffusion‐weighted acquisitions. Based on the results of these simulations, a 2D navigated multi‐slab rs‐EPI sequence with real‐time cardiac reordering was implemented. The multi‐slab implementation enables signal‐to‐noise ratio‐optimal repetition times of 1–2 s.</p> <p><strong>Results:</strong> Cardiac reordering was validated in simulations and in vivo using the multi‐slab rs‐EPI sequence. In comparisons with standard k‐space acquisitions, cardiac reordering was shown to reduce the variability due to motion‐induced phase artifacts by 30–50%. High‐resolution diffusion tensor imaging data acquired with the cardiac‐reordered multi‐slab rs‐EPI sequence are presented.</p> <p><strong>Conclusion:</strong> A 3D multi‐slab rs‐EPI sequence with cardiac reordering has been demonstrated in vivo and is shown to provide high‐quality 3D diffusion‐weighted data sets.</p>
first_indexed 2024-03-06T18:50:49Z
format Journal article
id oxford-uuid:10250c67-2ef8-4bb1-8caa-b8744f1a24c0
institution University of Oxford
last_indexed 2024-03-06T18:50:49Z
publishDate 2013
record_format dspace
spelling oxford-uuid:10250c67-2ef8-4bb1-8caa-b8744f1a24c02022-03-26T09:54:57Z3D multi-slab diffusion-weighted readout-segmented EPI with real-time cardiac-reordered k-space acquisitionJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:10250c67-2ef8-4bb1-8caa-b8744f1a24c0Symplectic Elements at Oxford2013Frost, RMiller, KTijssen, RPorter, DJezzard, P<p><strong>Purpose:</strong> The aim of this study was to develop, implement, and demonstrate a three‐dimensional (3D) extension of the readout‐segmented echo‐planar imaging (rs‐EPI) sequence for diffusion imaging.</p> <p><strong>Theory and Methods:</strong> Potential k‐space acquisition schemes were assessed by simulating their associated spatial point spread functions. Motion‐induced phase artifacts were also simulated to test navigator corrections and a real‐time reordering of the k‐space acquisition relative to the cardiac cycle. The cardiac reordering strategy preferentially chooses readout segments closer to the center of 3D k‐space during diastole. Motion‐induced phase artifacts were quantified by calculating the voxel‐wise temporal variation in a set of repeated diffusion‐weighted acquisitions. Based on the results of these simulations, a 2D navigated multi‐slab rs‐EPI sequence with real‐time cardiac reordering was implemented. The multi‐slab implementation enables signal‐to‐noise ratio‐optimal repetition times of 1–2 s.</p> <p><strong>Results:</strong> Cardiac reordering was validated in simulations and in vivo using the multi‐slab rs‐EPI sequence. In comparisons with standard k‐space acquisitions, cardiac reordering was shown to reduce the variability due to motion‐induced phase artifacts by 30–50%. High‐resolution diffusion tensor imaging data acquired with the cardiac‐reordered multi‐slab rs‐EPI sequence are presented.</p> <p><strong>Conclusion:</strong> A 3D multi‐slab rs‐EPI sequence with cardiac reordering has been demonstrated in vivo and is shown to provide high‐quality 3D diffusion‐weighted data sets.</p>
spellingShingle Frost, R
Miller, K
Tijssen, R
Porter, D
Jezzard, P
3D multi-slab diffusion-weighted readout-segmented EPI with real-time cardiac-reordered k-space acquisition
title 3D multi-slab diffusion-weighted readout-segmented EPI with real-time cardiac-reordered k-space acquisition
title_full 3D multi-slab diffusion-weighted readout-segmented EPI with real-time cardiac-reordered k-space acquisition
title_fullStr 3D multi-slab diffusion-weighted readout-segmented EPI with real-time cardiac-reordered k-space acquisition
title_full_unstemmed 3D multi-slab diffusion-weighted readout-segmented EPI with real-time cardiac-reordered k-space acquisition
title_short 3D multi-slab diffusion-weighted readout-segmented EPI with real-time cardiac-reordered k-space acquisition
title_sort 3d multi slab diffusion weighted readout segmented epi with real time cardiac reordered k space acquisition
work_keys_str_mv AT frostr 3dmultislabdiffusionweightedreadoutsegmentedepiwithrealtimecardiacreorderedkspaceacquisition
AT millerk 3dmultislabdiffusionweightedreadoutsegmentedepiwithrealtimecardiacreorderedkspaceacquisition
AT tijssenr 3dmultislabdiffusionweightedreadoutsegmentedepiwithrealtimecardiacreorderedkspaceacquisition
AT porterd 3dmultislabdiffusionweightedreadoutsegmentedepiwithrealtimecardiacreorderedkspaceacquisition
AT jezzardp 3dmultislabdiffusionweightedreadoutsegmentedepiwithrealtimecardiacreorderedkspaceacquisition