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Closed-loop control of k-space sampling via physiologic feedback for cine MRI

BACKGROUND: Segmented cine cardiac MRI combines data from multiple heartbeats to achieve high spatiotemporal resolution cardiac images, yet predefined k-space segmentation trajectories can lead to suboptimal k-space sampling. In this work, we developed and evaluated an autonomous and closed-loop con...

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Autores principales: Contijoch, Francisco, Han, Yuchi, Kamesh Iyer, Srikant, Kellman, Peter, Gualtieri, Gene, Elliott, Mark A., Berisha, Sebastian, Gorman, Joseph H., Gorman, Robert C., Pilla, James J., Witschey, Walter R. T.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7771662/
https://www.ncbi.nlm.nih.gov/pubmed/33373391
http://dx.doi.org/10.1371/journal.pone.0244286
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author Contijoch, Francisco
Han, Yuchi
Kamesh Iyer, Srikant
Kellman, Peter
Gualtieri, Gene
Elliott, Mark A.
Berisha, Sebastian
Gorman, Joseph H.
Gorman, Robert C.
Pilla, James J.
Witschey, Walter R. T.
author_facet Contijoch, Francisco
Han, Yuchi
Kamesh Iyer, Srikant
Kellman, Peter
Gualtieri, Gene
Elliott, Mark A.
Berisha, Sebastian
Gorman, Joseph H.
Gorman, Robert C.
Pilla, James J.
Witschey, Walter R. T.
author_sort Contijoch, Francisco
collection PubMed
description BACKGROUND: Segmented cine cardiac MRI combines data from multiple heartbeats to achieve high spatiotemporal resolution cardiac images, yet predefined k-space segmentation trajectories can lead to suboptimal k-space sampling. In this work, we developed and evaluated an autonomous and closed-loop control system for radial k-space sampling (ARKS) to increase sampling uniformity. METHODS: The closed-loop system autonomously selects radial k-space sampling trajectory during live segmented cine MRI and attempts to optimize angular sampling uniformity by selecting views in regions of k-space that were not previously well-sampled. Sampling uniformity and the ability to detect cardiac phase in vivo was assessed using ECG data acquired from 10 normal subjects in an MRI scanner. The approach was then implemented with a fast gradient echo sequence on a whole-body clinical MRI scanner and imaging was performed in 4 healthy volunteers. The closed-loop k-space trajectory was compared to random, uniformly distributed and golden angle view trajectories via measurement of k-space uniformity and the point spread function. Lastly, an arrhythmic dataset was used to evaluate a potential application of the approach. RESULTS: The autonomous trajectory increased k-space sampling uniformity by 15±7%, main lobe point spread function (PSF) signal intensity by 6±4%, and reduced ringing relative to golden angle sampling. When implemented, the autonomous pulse sequence prescribed radial view angles faster than the scan TR (0.98 ± 0.01 ms, maximum = 1.38 ms) and increased k-space sampling mean uniformity by 10±11%, decreased uniformity variability by 44±12%, and increased PSF signal ratio by 6±6% relative to golden angle sampling. CONCLUSION: The closed-loop approach enables near-uniform radial sampling in a segmented acquisition approach which was higher than predetermined golden-angle radial sampling. This can be utilized to increase the sampling or decrease the temporal footprint of an acquisition and the closed-loop framework has the potential to be applied to patients with complex heart rhythms.
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spelling pubmed-77716622021-01-08 Closed-loop control of k-space sampling via physiologic feedback for cine MRI Contijoch, Francisco Han, Yuchi Kamesh Iyer, Srikant Kellman, Peter Gualtieri, Gene Elliott, Mark A. Berisha, Sebastian Gorman, Joseph H. Gorman, Robert C. Pilla, James J. Witschey, Walter R. T. PLoS One Research Article BACKGROUND: Segmented cine cardiac MRI combines data from multiple heartbeats to achieve high spatiotemporal resolution cardiac images, yet predefined k-space segmentation trajectories can lead to suboptimal k-space sampling. In this work, we developed and evaluated an autonomous and closed-loop control system for radial k-space sampling (ARKS) to increase sampling uniformity. METHODS: The closed-loop system autonomously selects radial k-space sampling trajectory during live segmented cine MRI and attempts to optimize angular sampling uniformity by selecting views in regions of k-space that were not previously well-sampled. Sampling uniformity and the ability to detect cardiac phase in vivo was assessed using ECG data acquired from 10 normal subjects in an MRI scanner. The approach was then implemented with a fast gradient echo sequence on a whole-body clinical MRI scanner and imaging was performed in 4 healthy volunteers. The closed-loop k-space trajectory was compared to random, uniformly distributed and golden angle view trajectories via measurement of k-space uniformity and the point spread function. Lastly, an arrhythmic dataset was used to evaluate a potential application of the approach. RESULTS: The autonomous trajectory increased k-space sampling uniformity by 15±7%, main lobe point spread function (PSF) signal intensity by 6±4%, and reduced ringing relative to golden angle sampling. When implemented, the autonomous pulse sequence prescribed radial view angles faster than the scan TR (0.98 ± 0.01 ms, maximum = 1.38 ms) and increased k-space sampling mean uniformity by 10±11%, decreased uniformity variability by 44±12%, and increased PSF signal ratio by 6±6% relative to golden angle sampling. CONCLUSION: The closed-loop approach enables near-uniform radial sampling in a segmented acquisition approach which was higher than predetermined golden-angle radial sampling. This can be utilized to increase the sampling or decrease the temporal footprint of an acquisition and the closed-loop framework has the potential to be applied to patients with complex heart rhythms. Public Library of Science 2020-12-29 /pmc/articles/PMC7771662/ /pubmed/33373391 http://dx.doi.org/10.1371/journal.pone.0244286 Text en https://creativecommons.org/publicdomain/zero/1.0/ This is an open access article, free of all copyright, and may be freely reproduced, distributed, transmitted, modified, built upon, or otherwise used by anyone for any lawful purpose. The work is made available under the Creative Commons CC0 (https://creativecommons.org/publicdomain/zero/1.0/) public domain dedication.
spellingShingle Research Article
Contijoch, Francisco
Han, Yuchi
Kamesh Iyer, Srikant
Kellman, Peter
Gualtieri, Gene
Elliott, Mark A.
Berisha, Sebastian
Gorman, Joseph H.
Gorman, Robert C.
Pilla, James J.
Witschey, Walter R. T.
Closed-loop control of k-space sampling via physiologic feedback for cine MRI
title Closed-loop control of k-space sampling via physiologic feedback for cine MRI
title_full Closed-loop control of k-space sampling via physiologic feedback for cine MRI
title_fullStr Closed-loop control of k-space sampling via physiologic feedback for cine MRI
title_full_unstemmed Closed-loop control of k-space sampling via physiologic feedback for cine MRI
title_short Closed-loop control of k-space sampling via physiologic feedback for cine MRI
title_sort closed-loop control of k-space sampling via physiologic feedback for cine mri
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7771662/
https://www.ncbi.nlm.nih.gov/pubmed/33373391
http://dx.doi.org/10.1371/journal.pone.0244286
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