Cargando…

Respiratory motion-compensated high-resolution 3D whole-heart T1ρ mapping

BACKGROUND: Cardiovascular magnetic resonance (CMR) T1ρ mapping can be used to detect ischemic or non-ischemic cardiomyopathy without the need of exogenous contrast agents. Current 2D myocardial T1ρ mapping requires multiple breath-holds and provides limited coverage. Respiratory gating by diaphragm...

Descripción completa

Detalles Bibliográficos
Autores principales: Qi, Haikun, Bustin, Aurelien, Kuestner, Thomas, Hajhosseiny, Reza, Cruz, Gastao, Kunze, Karl, Neji, Radhouene, Botnar, René M., Prieto, Claudia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6998259/
https://www.ncbi.nlm.nih.gov/pubmed/32014001
http://dx.doi.org/10.1186/s12968-020-0597-5
_version_ 1783493823050022912
author Qi, Haikun
Bustin, Aurelien
Kuestner, Thomas
Hajhosseiny, Reza
Cruz, Gastao
Kunze, Karl
Neji, Radhouene
Botnar, René M.
Prieto, Claudia
author_facet Qi, Haikun
Bustin, Aurelien
Kuestner, Thomas
Hajhosseiny, Reza
Cruz, Gastao
Kunze, Karl
Neji, Radhouene
Botnar, René M.
Prieto, Claudia
author_sort Qi, Haikun
collection PubMed
description BACKGROUND: Cardiovascular magnetic resonance (CMR) T1ρ mapping can be used to detect ischemic or non-ischemic cardiomyopathy without the need of exogenous contrast agents. Current 2D myocardial T1ρ mapping requires multiple breath-holds and provides limited coverage. Respiratory gating by diaphragmatic navigation has recently been exploited to enable free-breathing 3D T1ρ mapping, which, however, has low acquisition efficiency and may result in unpredictable and long scan times. This study aims to develop a fast respiratory motion-compensated 3D whole-heart myocardial T1ρ mapping technique with high spatial resolution and predictable scan time. METHODS: The proposed electrocardiogram (ECG)-triggered T1ρ mapping sequence is performed under free-breathing using an undersampled variable-density 3D Cartesian sampling with spiral-like order. Preparation pulses with different T1ρ spin-lock times are employed to acquire multiple T1ρ-weighted images. A saturation prepulse is played at the start of each heartbeat to reset the magnetization before T1ρ preparation. Image navigators are employed to enable beat-to-beat 2D translational respiratory motion correction of the heart for each T1ρ-weighted dataset, after which, 3D translational registration is performed to align all T1ρ-weighted volumes. Undersampled reconstruction is performed using a multi-contrast 3D patch-based low-rank algorithm. The accuracy of the proposed technique was tested in phantoms and in vivo in 11 healthy subjects in comparison with 2D T1ρ mapping. The feasibility of the proposed technique was further investigated in 3 patients with suspected cardiovascular disease. Breath-hold late-gadolinium enhanced (LGE) images were acquired in patients as reference for scar detection. RESULTS: Phantoms results revealed that the proposed technique provided accurate T1ρ values over a wide range of simulated heart rates in comparison to a 2D T1ρ mapping reference. Homogeneous 3D T1ρ maps were obtained for healthy subjects, with septal T1ρ of 58.0 ± 4.1 ms which was comparable to 2D breath-hold measurements (57.6 ± 4.7 ms, P = 0.83). Myocardial scar was detected in 1 of the 3 patients, and increased T1ρ values (87.4 ± 5.7 ms) were observed in the infarcted region. CONCLUSIONS: An accelerated free-breathing 3D whole-heart T1ρ mapping technique was developed with high respiratory scan efficiency and near-isotropic spatial resolution (1.7 × 1.7 × 2 mm(3)) in a clinically feasible scan time of ~ 6 mins. Preliminary patient results suggest that the proposed technique may find applications in non-contrast myocardial tissue characterization.
format Online
Article
Text
id pubmed-6998259
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher BioMed Central
record_format MEDLINE/PubMed
spelling pubmed-69982592020-02-05 Respiratory motion-compensated high-resolution 3D whole-heart T1ρ mapping Qi, Haikun Bustin, Aurelien Kuestner, Thomas Hajhosseiny, Reza Cruz, Gastao Kunze, Karl Neji, Radhouene Botnar, René M. Prieto, Claudia J Cardiovasc Magn Reson Technical Notes BACKGROUND: Cardiovascular magnetic resonance (CMR) T1ρ mapping can be used to detect ischemic or non-ischemic cardiomyopathy without the need of exogenous contrast agents. Current 2D myocardial T1ρ mapping requires multiple breath-holds and provides limited coverage. Respiratory gating by diaphragmatic navigation has recently been exploited to enable free-breathing 3D T1ρ mapping, which, however, has low acquisition efficiency and may result in unpredictable and long scan times. This study aims to develop a fast respiratory motion-compensated 3D whole-heart myocardial T1ρ mapping technique with high spatial resolution and predictable scan time. METHODS: The proposed electrocardiogram (ECG)-triggered T1ρ mapping sequence is performed under free-breathing using an undersampled variable-density 3D Cartesian sampling with spiral-like order. Preparation pulses with different T1ρ spin-lock times are employed to acquire multiple T1ρ-weighted images. A saturation prepulse is played at the start of each heartbeat to reset the magnetization before T1ρ preparation. Image navigators are employed to enable beat-to-beat 2D translational respiratory motion correction of the heart for each T1ρ-weighted dataset, after which, 3D translational registration is performed to align all T1ρ-weighted volumes. Undersampled reconstruction is performed using a multi-contrast 3D patch-based low-rank algorithm. The accuracy of the proposed technique was tested in phantoms and in vivo in 11 healthy subjects in comparison with 2D T1ρ mapping. The feasibility of the proposed technique was further investigated in 3 patients with suspected cardiovascular disease. Breath-hold late-gadolinium enhanced (LGE) images were acquired in patients as reference for scar detection. RESULTS: Phantoms results revealed that the proposed technique provided accurate T1ρ values over a wide range of simulated heart rates in comparison to a 2D T1ρ mapping reference. Homogeneous 3D T1ρ maps were obtained for healthy subjects, with septal T1ρ of 58.0 ± 4.1 ms which was comparable to 2D breath-hold measurements (57.6 ± 4.7 ms, P = 0.83). Myocardial scar was detected in 1 of the 3 patients, and increased T1ρ values (87.4 ± 5.7 ms) were observed in the infarcted region. CONCLUSIONS: An accelerated free-breathing 3D whole-heart T1ρ mapping technique was developed with high respiratory scan efficiency and near-isotropic spatial resolution (1.7 × 1.7 × 2 mm(3)) in a clinically feasible scan time of ~ 6 mins. Preliminary patient results suggest that the proposed technique may find applications in non-contrast myocardial tissue characterization. BioMed Central 2020-02-03 /pmc/articles/PMC6998259/ /pubmed/32014001 http://dx.doi.org/10.1186/s12968-020-0597-5 Text en © The Author(s). 2020 Open AccessThis article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The Creative Commons Public Domain Dedication waiver (http://creativecommons.org/publicdomain/zero/1.0/) applies to the data made available in this article, unless otherwise stated.
spellingShingle Technical Notes
Qi, Haikun
Bustin, Aurelien
Kuestner, Thomas
Hajhosseiny, Reza
Cruz, Gastao
Kunze, Karl
Neji, Radhouene
Botnar, René M.
Prieto, Claudia
Respiratory motion-compensated high-resolution 3D whole-heart T1ρ mapping
title Respiratory motion-compensated high-resolution 3D whole-heart T1ρ mapping
title_full Respiratory motion-compensated high-resolution 3D whole-heart T1ρ mapping
title_fullStr Respiratory motion-compensated high-resolution 3D whole-heart T1ρ mapping
title_full_unstemmed Respiratory motion-compensated high-resolution 3D whole-heart T1ρ mapping
title_short Respiratory motion-compensated high-resolution 3D whole-heart T1ρ mapping
title_sort respiratory motion-compensated high-resolution 3d whole-heart t1ρ mapping
topic Technical Notes
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6998259/
https://www.ncbi.nlm.nih.gov/pubmed/32014001
http://dx.doi.org/10.1186/s12968-020-0597-5
work_keys_str_mv AT qihaikun respiratorymotioncompensatedhighresolution3dwholeheartt1rmapping
AT bustinaurelien respiratorymotioncompensatedhighresolution3dwholeheartt1rmapping
AT kuestnerthomas respiratorymotioncompensatedhighresolution3dwholeheartt1rmapping
AT hajhosseinyreza respiratorymotioncompensatedhighresolution3dwholeheartt1rmapping
AT cruzgastao respiratorymotioncompensatedhighresolution3dwholeheartt1rmapping
AT kunzekarl respiratorymotioncompensatedhighresolution3dwholeheartt1rmapping
AT nejiradhouene respiratorymotioncompensatedhighresolution3dwholeheartt1rmapping
AT botnarrenem respiratorymotioncompensatedhighresolution3dwholeheartt1rmapping
AT prietoclaudia respiratorymotioncompensatedhighresolution3dwholeheartt1rmapping