Cargando…

Influence of labeling parameters and respiratory motion on velocity‐selective arterial spin labeling for renal perfusion imaging

PURPOSE: Arterial transit time uncertainties and challenges during planning are potential issues for renal perfusion measurement using spatially selective arterial spin labeling techniques. To mitigate these potential issues, a spatially non‐selective technique, such as velocity‐selective arterial s...

Descripción completa

Detalles Bibliográficos
Autores principales: Bones, Isabell K., Franklin, Suzanne L., Harteveld, Anita A., van Osch, Matthias J. P., Hendrikse, Jeroen, Moonen, Chrit, van Stralen, Marijn, Bos, Clemens
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7384062/
https://www.ncbi.nlm.nih.gov/pubmed/32180263
http://dx.doi.org/10.1002/mrm.28252
_version_ 1783563548301983744
author Bones, Isabell K.
Franklin, Suzanne L.
Harteveld, Anita A.
van Osch, Matthias J. P.
Hendrikse, Jeroen
Moonen, Chrit
van Stralen, Marijn
Bos, Clemens
author_facet Bones, Isabell K.
Franklin, Suzanne L.
Harteveld, Anita A.
van Osch, Matthias J. P.
Hendrikse, Jeroen
Moonen, Chrit
van Stralen, Marijn
Bos, Clemens
author_sort Bones, Isabell K.
collection PubMed
description PURPOSE: Arterial transit time uncertainties and challenges during planning are potential issues for renal perfusion measurement using spatially selective arterial spin labeling techniques. To mitigate these potential issues, a spatially non‐selective technique, such as velocity‐selective arterial spin labeling (VSASL), could be an alternative. This article explores the influence of VSASL sequence parameters and respiratory induced motion on VS‐label generation. METHODS: VSASL data were acquired in human subjects (n = 15), with both single and dual labeling, during paced‐breathing, while essential sequence parameters were systematically varied; (1) cutoff velocity, (2) labeling gradient orientation and (3) post‐labeling delay (PLD). Pseudo‐continuous ASL was acquired as a spatially selective reference. In an additional free‐breathing single VSASL experiment (n = 9) we investigated respiratory motion influence on VS‐labeling. Absolute renal blood flow (RBF), perfusion weighted signal (PWS), and temporal signal‐to‐noise ratio (tSNR) were determined. RESULTS: (1) With decreasing cutoff velocity, tSNR and PWS increased. However, undesired tissue labeling occurred at low cutoff velocities (≤ 5.4 cm/s). (2) Labeling gradient orientation had little effect on tSNR and PWS. (3) For single VSASL high signal appeared in the kidney pedicle at PLD < 800 ms, and tSNR and PWS decreased with increasing PLD. For dual VSASL, maximum tSNR occurred at PLD = 1200 ms. Average cortical RBF measured with dual VSASL (264 ± 34 mL/min/100 g) at a cutoff velocity of 5.4 cm/s, and feet‐head labeling was slightly lower than with pseudo‐continuous ASL (283 ± 55 mL/min/100 g). CONCLUSION: With well‐chosen sequence parameters, tissue labeling induced by respiratory motion can be minimized, allowing to obtain good quality RBF maps using planning‐free labeling with dual VSASL.
format Online
Article
Text
id pubmed-7384062
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-73840622020-07-28 Influence of labeling parameters and respiratory motion on velocity‐selective arterial spin labeling for renal perfusion imaging Bones, Isabell K. Franklin, Suzanne L. Harteveld, Anita A. van Osch, Matthias J. P. Hendrikse, Jeroen Moonen, Chrit van Stralen, Marijn Bos, Clemens Magn Reson Med Full Papers—Imaging Methodology PURPOSE: Arterial transit time uncertainties and challenges during planning are potential issues for renal perfusion measurement using spatially selective arterial spin labeling techniques. To mitigate these potential issues, a spatially non‐selective technique, such as velocity‐selective arterial spin labeling (VSASL), could be an alternative. This article explores the influence of VSASL sequence parameters and respiratory induced motion on VS‐label generation. METHODS: VSASL data were acquired in human subjects (n = 15), with both single and dual labeling, during paced‐breathing, while essential sequence parameters were systematically varied; (1) cutoff velocity, (2) labeling gradient orientation and (3) post‐labeling delay (PLD). Pseudo‐continuous ASL was acquired as a spatially selective reference. In an additional free‐breathing single VSASL experiment (n = 9) we investigated respiratory motion influence on VS‐labeling. Absolute renal blood flow (RBF), perfusion weighted signal (PWS), and temporal signal‐to‐noise ratio (tSNR) were determined. RESULTS: (1) With decreasing cutoff velocity, tSNR and PWS increased. However, undesired tissue labeling occurred at low cutoff velocities (≤ 5.4 cm/s). (2) Labeling gradient orientation had little effect on tSNR and PWS. (3) For single VSASL high signal appeared in the kidney pedicle at PLD < 800 ms, and tSNR and PWS decreased with increasing PLD. For dual VSASL, maximum tSNR occurred at PLD = 1200 ms. Average cortical RBF measured with dual VSASL (264 ± 34 mL/min/100 g) at a cutoff velocity of 5.4 cm/s, and feet‐head labeling was slightly lower than with pseudo‐continuous ASL (283 ± 55 mL/min/100 g). CONCLUSION: With well‐chosen sequence parameters, tissue labeling induced by respiratory motion can be minimized, allowing to obtain good quality RBF maps using planning‐free labeling with dual VSASL. John Wiley and Sons Inc. 2020-03-17 2020-10 /pmc/articles/PMC7384062/ /pubmed/32180263 http://dx.doi.org/10.1002/mrm.28252 Text en © 2020 The Authors. Magnetic Resonance in Medicine published by Wiley Periodicals, Inc. on behalf of International Society for Magnetic Resonance in Medicine This is an open access article under the terms of the http://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 Full Papers—Imaging Methodology
Bones, Isabell K.
Franklin, Suzanne L.
Harteveld, Anita A.
van Osch, Matthias J. P.
Hendrikse, Jeroen
Moonen, Chrit
van Stralen, Marijn
Bos, Clemens
Influence of labeling parameters and respiratory motion on velocity‐selective arterial spin labeling for renal perfusion imaging
title Influence of labeling parameters and respiratory motion on velocity‐selective arterial spin labeling for renal perfusion imaging
title_full Influence of labeling parameters and respiratory motion on velocity‐selective arterial spin labeling for renal perfusion imaging
title_fullStr Influence of labeling parameters and respiratory motion on velocity‐selective arterial spin labeling for renal perfusion imaging
title_full_unstemmed Influence of labeling parameters and respiratory motion on velocity‐selective arterial spin labeling for renal perfusion imaging
title_short Influence of labeling parameters and respiratory motion on velocity‐selective arterial spin labeling for renal perfusion imaging
title_sort influence of labeling parameters and respiratory motion on velocity‐selective arterial spin labeling for renal perfusion imaging
topic Full Papers—Imaging Methodology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7384062/
https://www.ncbi.nlm.nih.gov/pubmed/32180263
http://dx.doi.org/10.1002/mrm.28252
work_keys_str_mv AT bonesisabellk influenceoflabelingparametersandrespiratorymotiononvelocityselectivearterialspinlabelingforrenalperfusionimaging
AT franklinsuzannel influenceoflabelingparametersandrespiratorymotiononvelocityselectivearterialspinlabelingforrenalperfusionimaging
AT harteveldanitaa influenceoflabelingparametersandrespiratorymotiononvelocityselectivearterialspinlabelingforrenalperfusionimaging
AT vanoschmatthiasjp influenceoflabelingparametersandrespiratorymotiononvelocityselectivearterialspinlabelingforrenalperfusionimaging
AT hendriksejeroen influenceoflabelingparametersandrespiratorymotiononvelocityselectivearterialspinlabelingforrenalperfusionimaging
AT moonenchrit influenceoflabelingparametersandrespiratorymotiononvelocityselectivearterialspinlabelingforrenalperfusionimaging
AT vanstralenmarijn influenceoflabelingparametersandrespiratorymotiononvelocityselectivearterialspinlabelingforrenalperfusionimaging
AT bosclemens influenceoflabelingparametersandrespiratorymotiononvelocityselectivearterialspinlabelingforrenalperfusionimaging