Cargando…

Accelerated dual‐venc 4D flow MRI with variable high‐venc spatial resolution for neurovascular applications

PURPOSE: Dual‐velocity encoded (dual‐venc or DV) 4D flow MRI achieves wide velocity dynamic range and velocity‐to‐noise ratio (VNR), enabling accurate neurovascular flow characterization. To reduce scan time, we present interleaved dual‐venc 4D Flow with independently prescribed, prospectively under...

Descripción completa

Detalles Bibliográficos
Autores principales: Aristova, Maria, Pang, Jianing, Ma, Yue, Ma, Liliana, Berhane, Haben, Rayz, Vitaliy, Markl, Michael, Schnell, Susanne
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9392495/
https://www.ncbi.nlm.nih.gov/pubmed/35754143
http://dx.doi.org/10.1002/mrm.29306
_version_ 1784771074124152832
author Aristova, Maria
Pang, Jianing
Ma, Yue
Ma, Liliana
Berhane, Haben
Rayz, Vitaliy
Markl, Michael
Schnell, Susanne
author_facet Aristova, Maria
Pang, Jianing
Ma, Yue
Ma, Liliana
Berhane, Haben
Rayz, Vitaliy
Markl, Michael
Schnell, Susanne
author_sort Aristova, Maria
collection PubMed
description PURPOSE: Dual‐velocity encoded (dual‐venc or DV) 4D flow MRI achieves wide velocity dynamic range and velocity‐to‐noise ratio (VNR), enabling accurate neurovascular flow characterization. To reduce scan time, we present interleaved dual‐venc 4D Flow with independently prescribed, prospectively undersampled spatial resolution of the high‐venc (HV) acquisition: Variable Spatial Resolution Dual Venc (VSRDV). METHODS: A prototype VSRDV sequence was developed based on a Cartesian acquisition with eight‐point phase encoding, combining PEAK‐GRAPPA acceleration with zero‐filling in phase and partition directions for HV. The VSRDV approach was optimized by varying z, the zero‐filling fraction of HV relative to low‐venc, between 0%–80% in vitro (realistic neurovascular model with pulsatile flow) and in vivo (n = 10 volunteers). Antialiasing precision, mean and peak velocity quantification accuracy, and test–retest reproducibility were assessed relative to reference images with equal‐resolution HV and low venc (z = 0%). RESULTS: In vitro results for all z demonstrated an antialiasing true positive rate at least 95% for [Formula: see text]  = 2 and 5, with no linear relationship to z (p = 0.62 and 0.13, respectively). Bland–Altman analysis for z = 20%, 40%, 60%, or 80% versus z = 0% in vitro and in vivo demonstrated no bias >1% of venc in mean or peak velocity values at any [Formula: see text]. In vitro mean and peak velocity, and in vivo peak velocity, had limits of agreement within 15%. CONCLUSION: VSRDV allows up to 34.8% scan time reduction compared to PEAK‐GRAPPA accelerated DV 4D Flow MRI, enabling large spatial coverage and dynamic range while maintaining VNR and velocity measurement accuracy.
format Online
Article
Text
id pubmed-9392495
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-93924952022-10-14 Accelerated dual‐venc 4D flow MRI with variable high‐venc spatial resolution for neurovascular applications Aristova, Maria Pang, Jianing Ma, Yue Ma, Liliana Berhane, Haben Rayz, Vitaliy Markl, Michael Schnell, Susanne Magn Reson Med Research Articles–Imaging Methodology PURPOSE: Dual‐velocity encoded (dual‐venc or DV) 4D flow MRI achieves wide velocity dynamic range and velocity‐to‐noise ratio (VNR), enabling accurate neurovascular flow characterization. To reduce scan time, we present interleaved dual‐venc 4D Flow with independently prescribed, prospectively undersampled spatial resolution of the high‐venc (HV) acquisition: Variable Spatial Resolution Dual Venc (VSRDV). METHODS: A prototype VSRDV sequence was developed based on a Cartesian acquisition with eight‐point phase encoding, combining PEAK‐GRAPPA acceleration with zero‐filling in phase and partition directions for HV. The VSRDV approach was optimized by varying z, the zero‐filling fraction of HV relative to low‐venc, between 0%–80% in vitro (realistic neurovascular model with pulsatile flow) and in vivo (n = 10 volunteers). Antialiasing precision, mean and peak velocity quantification accuracy, and test–retest reproducibility were assessed relative to reference images with equal‐resolution HV and low venc (z = 0%). RESULTS: In vitro results for all z demonstrated an antialiasing true positive rate at least 95% for [Formula: see text]  = 2 and 5, with no linear relationship to z (p = 0.62 and 0.13, respectively). Bland–Altman analysis for z = 20%, 40%, 60%, or 80% versus z = 0% in vitro and in vivo demonstrated no bias >1% of venc in mean or peak velocity values at any [Formula: see text]. In vitro mean and peak velocity, and in vivo peak velocity, had limits of agreement within 15%. CONCLUSION: VSRDV allows up to 34.8% scan time reduction compared to PEAK‐GRAPPA accelerated DV 4D Flow MRI, enabling large spatial coverage and dynamic range while maintaining VNR and velocity measurement accuracy. John Wiley and Sons Inc. 2022-06-26 2022-10 /pmc/articles/PMC9392495/ /pubmed/35754143 http://dx.doi.org/10.1002/mrm.29306 Text en © 2022 The Authors. Magnetic Resonance in Medicine published by Wiley Periodicals LLC on behalf of International Society for Magnetic Resonance in Medicine. https://creativecommons.org/licenses/by-nc/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc/4.0/ (https://creativecommons.org/licenses/by-nc/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Research Articles–Imaging Methodology
Aristova, Maria
Pang, Jianing
Ma, Yue
Ma, Liliana
Berhane, Haben
Rayz, Vitaliy
Markl, Michael
Schnell, Susanne
Accelerated dual‐venc 4D flow MRI with variable high‐venc spatial resolution for neurovascular applications
title Accelerated dual‐venc 4D flow MRI with variable high‐venc spatial resolution for neurovascular applications
title_full Accelerated dual‐venc 4D flow MRI with variable high‐venc spatial resolution for neurovascular applications
title_fullStr Accelerated dual‐venc 4D flow MRI with variable high‐venc spatial resolution for neurovascular applications
title_full_unstemmed Accelerated dual‐venc 4D flow MRI with variable high‐venc spatial resolution for neurovascular applications
title_short Accelerated dual‐venc 4D flow MRI with variable high‐venc spatial resolution for neurovascular applications
title_sort accelerated dual‐venc 4d flow mri with variable high‐venc spatial resolution for neurovascular applications
topic Research Articles–Imaging Methodology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9392495/
https://www.ncbi.nlm.nih.gov/pubmed/35754143
http://dx.doi.org/10.1002/mrm.29306
work_keys_str_mv AT aristovamaria accelerateddualvenc4dflowmriwithvariablehighvencspatialresolutionforneurovascularapplications
AT pangjianing accelerateddualvenc4dflowmriwithvariablehighvencspatialresolutionforneurovascularapplications
AT mayue accelerateddualvenc4dflowmriwithvariablehighvencspatialresolutionforneurovascularapplications
AT maliliana accelerateddualvenc4dflowmriwithvariablehighvencspatialresolutionforneurovascularapplications
AT berhanehaben accelerateddualvenc4dflowmriwithvariablehighvencspatialresolutionforneurovascularapplications
AT rayzvitaliy accelerateddualvenc4dflowmriwithvariablehighvencspatialresolutionforneurovascularapplications
AT marklmichael accelerateddualvenc4dflowmriwithvariablehighvencspatialresolutionforneurovascularapplications
AT schnellsusanne accelerateddualvenc4dflowmriwithvariablehighvencspatialresolutionforneurovascularapplications