Cargando…

Characterization and correction of center‐frequency effects in X‐nuclear eddy current compensations on a clinical MR system

PURPOSE: The aim of the study was to investigate whether incorrectly compensated eddy currents are the source of persistent X‐nuclear spectroscopy and imaging artifacts, as well as methods to correct this. METHODS: Pulse‐acquire spectra were collected for (1)H and X‐nuclei ((23)Na or (31)P) using th...

Descripción completa

Detalles Bibliográficos
Autores principales: McLean, Mary A., Hinks, R. Scott, Kaggie, Joshua D., Woitek, Ramona, Riemer, Frank, Graves, Martin J., McIntyre, Dominick J. O., Gallagher, Ferdia A., Schulte, Rolf F.
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/PMC7898706/
https://www.ncbi.nlm.nih.gov/pubmed/33274790
http://dx.doi.org/10.1002/mrm.28607
_version_ 1783653920149602304
author McLean, Mary A.
Hinks, R. Scott
Kaggie, Joshua D.
Woitek, Ramona
Riemer, Frank
Graves, Martin J.
McIntyre, Dominick J. O.
Gallagher, Ferdia A.
Schulte, Rolf F.
author_facet McLean, Mary A.
Hinks, R. Scott
Kaggie, Joshua D.
Woitek, Ramona
Riemer, Frank
Graves, Martin J.
McIntyre, Dominick J. O.
Gallagher, Ferdia A.
Schulte, Rolf F.
author_sort McLean, Mary A.
collection PubMed
description PURPOSE: The aim of the study was to investigate whether incorrectly compensated eddy currents are the source of persistent X‐nuclear spectroscopy and imaging artifacts, as well as methods to correct this. METHODS: Pulse‐acquire spectra were collected for (1)H and X‐nuclei ((23)Na or (31)P) using the minimum TR permitted on a 3T clinical MRI system. Data were collected in 3 orientations (axial, sagittal, and coronal) with the spoiler gradient at the end of the TR applied along the slice direction for each. Modifications to system calibration files to tailor eddy current compensation for each X‐nucleus were developed and applied, and data were compared with and without these corrections for: slice‐selective MRS (for (23)Na and (31)P), 2D spiral trajectories (for (13)C), and 3D cones trajectories (for (23)Na). RESULTS: Line‐shape distortions characteristic of eddy currents were demonstrated for X‐nuclei, which were not seen for (1)H. The severity of these correlated with the amplitude of the eddy current frequency compensation term applied by the system along the axis of the applied spoiler gradient. A proposed correction to eddy current compensation, taking account of the gyromagnetic ratio, was shown to dramatically reduce these distortions. The same correction was also shown to improve data quality of non‐Cartesian imaging (2D spiral and 3D cones trajectories). CONCLUSION: A simple adaptation of the default compensation for eddy currents was shown to eliminate a range of artifacts detected on X‐nuclear spectroscopy and imaging.
format Online
Article
Text
id pubmed-7898706
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-78987062021-03-03 Characterization and correction of center‐frequency effects in X‐nuclear eddy current compensations on a clinical MR system McLean, Mary A. Hinks, R. Scott Kaggie, Joshua D. Woitek, Ramona Riemer, Frank Graves, Martin J. McIntyre, Dominick J. O. Gallagher, Ferdia A. Schulte, Rolf F. Magn Reson Med Notes—Spectroscopic Methodology PURPOSE: The aim of the study was to investigate whether incorrectly compensated eddy currents are the source of persistent X‐nuclear spectroscopy and imaging artifacts, as well as methods to correct this. METHODS: Pulse‐acquire spectra were collected for (1)H and X‐nuclei ((23)Na or (31)P) using the minimum TR permitted on a 3T clinical MRI system. Data were collected in 3 orientations (axial, sagittal, and coronal) with the spoiler gradient at the end of the TR applied along the slice direction for each. Modifications to system calibration files to tailor eddy current compensation for each X‐nucleus were developed and applied, and data were compared with and without these corrections for: slice‐selective MRS (for (23)Na and (31)P), 2D spiral trajectories (for (13)C), and 3D cones trajectories (for (23)Na). RESULTS: Line‐shape distortions characteristic of eddy currents were demonstrated for X‐nuclei, which were not seen for (1)H. The severity of these correlated with the amplitude of the eddy current frequency compensation term applied by the system along the axis of the applied spoiler gradient. A proposed correction to eddy current compensation, taking account of the gyromagnetic ratio, was shown to dramatically reduce these distortions. The same correction was also shown to improve data quality of non‐Cartesian imaging (2D spiral and 3D cones trajectories). CONCLUSION: A simple adaptation of the default compensation for eddy currents was shown to eliminate a range of artifacts detected on X‐nuclear spectroscopy and imaging. John Wiley and Sons Inc. 2020-12-04 2021-05 /pmc/articles/PMC7898706/ /pubmed/33274790 http://dx.doi.org/10.1002/mrm.28607 Text en © 2020 The Authors. Magnetic Resonance in Medicine published by Wiley Periodicals LLC 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/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Notes—Spectroscopic Methodology
McLean, Mary A.
Hinks, R. Scott
Kaggie, Joshua D.
Woitek, Ramona
Riemer, Frank
Graves, Martin J.
McIntyre, Dominick J. O.
Gallagher, Ferdia A.
Schulte, Rolf F.
Characterization and correction of center‐frequency effects in X‐nuclear eddy current compensations on a clinical MR system
title Characterization and correction of center‐frequency effects in X‐nuclear eddy current compensations on a clinical MR system
title_full Characterization and correction of center‐frequency effects in X‐nuclear eddy current compensations on a clinical MR system
title_fullStr Characterization and correction of center‐frequency effects in X‐nuclear eddy current compensations on a clinical MR system
title_full_unstemmed Characterization and correction of center‐frequency effects in X‐nuclear eddy current compensations on a clinical MR system
title_short Characterization and correction of center‐frequency effects in X‐nuclear eddy current compensations on a clinical MR system
title_sort characterization and correction of center‐frequency effects in x‐nuclear eddy current compensations on a clinical mr system
topic Notes—Spectroscopic Methodology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7898706/
https://www.ncbi.nlm.nih.gov/pubmed/33274790
http://dx.doi.org/10.1002/mrm.28607
work_keys_str_mv AT mcleanmarya characterizationandcorrectionofcenterfrequencyeffectsinxnucleareddycurrentcompensationsonaclinicalmrsystem
AT hinksrscott characterizationandcorrectionofcenterfrequencyeffectsinxnucleareddycurrentcompensationsonaclinicalmrsystem
AT kaggiejoshuad characterizationandcorrectionofcenterfrequencyeffectsinxnucleareddycurrentcompensationsonaclinicalmrsystem
AT woitekramona characterizationandcorrectionofcenterfrequencyeffectsinxnucleareddycurrentcompensationsonaclinicalmrsystem
AT riemerfrank characterizationandcorrectionofcenterfrequencyeffectsinxnucleareddycurrentcompensationsonaclinicalmrsystem
AT gravesmartinj characterizationandcorrectionofcenterfrequencyeffectsinxnucleareddycurrentcompensationsonaclinicalmrsystem
AT mcintyredominickjo characterizationandcorrectionofcenterfrequencyeffectsinxnucleareddycurrentcompensationsonaclinicalmrsystem
AT gallagherferdiaa characterizationandcorrectionofcenterfrequencyeffectsinxnucleareddycurrentcompensationsonaclinicalmrsystem
AT schulterolff characterizationandcorrectionofcenterfrequencyeffectsinxnucleareddycurrentcompensationsonaclinicalmrsystem