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Transceive phase mapping using the PLANET method and its application for conductivity mapping in the brain

PURPOSE: To demonstrate feasibility of transceive phase mapping with the PLANET method and its application for conductivity reconstruction in the brain. METHODS: Accuracy and precision of transceive phase (ϕ(±)) estimation with PLANET, an ellipse fitting approach to phase‐cycled balanced steady stat...

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Autores principales: Gavazzi, Soraya, Shcherbakova, Yulia, Bartels, Lambertus W., Stalpers, Lukas J. A., Lagendijk, Jan J. W., Crezee, Hans, van den Berg, Cornelis A. T., van Lier, Astrid L. H. M. W.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6900152/
https://www.ncbi.nlm.nih.gov/pubmed/31483520
http://dx.doi.org/10.1002/mrm.27958
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author Gavazzi, Soraya
Shcherbakova, Yulia
Bartels, Lambertus W.
Stalpers, Lukas J. A.
Lagendijk, Jan J. W.
Crezee, Hans
van den Berg, Cornelis A. T.
van Lier, Astrid L. H. M. W.
author_facet Gavazzi, Soraya
Shcherbakova, Yulia
Bartels, Lambertus W.
Stalpers, Lukas J. A.
Lagendijk, Jan J. W.
Crezee, Hans
van den Berg, Cornelis A. T.
van Lier, Astrid L. H. M. W.
author_sort Gavazzi, Soraya
collection PubMed
description PURPOSE: To demonstrate feasibility of transceive phase mapping with the PLANET method and its application for conductivity reconstruction in the brain. METHODS: Accuracy and precision of transceive phase (ϕ(±)) estimation with PLANET, an ellipse fitting approach to phase‐cycled balanced steady state free precession (bSSFP) data, were assessed with simulations and measurements and compared to standard bSSFP. Measurements were conducted on a homogeneous phantom and in the brain of healthy volunteers at 3 tesla. Conductivity maps were reconstructed with Helmholtz‐based electrical properties tomography. In measurements, PLANET was also compared to a reference technique for transceive phase mapping, i.e., spin echo. RESULTS: Accuracy and precision of ϕ(±) estimated with PLANET depended on the chosen flip angle and TR. PLANET‐based ϕ(±) was less sensitive to perturbations induced by off‐resonance effects and partial volume (e.g., white matter + myelin) than bSSFP‐based ϕ(±). For flip angle = 25° and TR = 4.6 ms, PLANET showed an accuracy comparable to that of reference spin echo but a higher precision than bSSFP and spin echo (factor of 2 and 3, respectively). The acquisition time for PLANET was ~5 min; 2 min faster than spin echo and 8 times slower than bSSFP. However, PLANET simultaneously reconstructed T(1), T(2), B(0) maps besides mapping ϕ(±). In the phantom, PLANET‐based conductivity matched the true value and had the smallest spread of the three methods. In vivo, PLANET‐based conductivity was similar to spin echo‐based conductivity. CONCLUSION: Provided that appropriate sequence parameters are used, PLANET delivers accurate and precise ϕ(±) maps, which can be used to reconstruct brain tissue conductivity while simultaneously recovering T(1), T(2), and B(0) maps.
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spelling pubmed-69001522019-12-20 Transceive phase mapping using the PLANET method and its application for conductivity mapping in the brain Gavazzi, Soraya Shcherbakova, Yulia Bartels, Lambertus W. Stalpers, Lukas J. A. Lagendijk, Jan J. W. Crezee, Hans van den Berg, Cornelis A. T. van Lier, Astrid L. H. M. W. Magn Reson Med Full Papers—Imaging Methodology PURPOSE: To demonstrate feasibility of transceive phase mapping with the PLANET method and its application for conductivity reconstruction in the brain. METHODS: Accuracy and precision of transceive phase (ϕ(±)) estimation with PLANET, an ellipse fitting approach to phase‐cycled balanced steady state free precession (bSSFP) data, were assessed with simulations and measurements and compared to standard bSSFP. Measurements were conducted on a homogeneous phantom and in the brain of healthy volunteers at 3 tesla. Conductivity maps were reconstructed with Helmholtz‐based electrical properties tomography. In measurements, PLANET was also compared to a reference technique for transceive phase mapping, i.e., spin echo. RESULTS: Accuracy and precision of ϕ(±) estimated with PLANET depended on the chosen flip angle and TR. PLANET‐based ϕ(±) was less sensitive to perturbations induced by off‐resonance effects and partial volume (e.g., white matter + myelin) than bSSFP‐based ϕ(±). For flip angle = 25° and TR = 4.6 ms, PLANET showed an accuracy comparable to that of reference spin echo but a higher precision than bSSFP and spin echo (factor of 2 and 3, respectively). The acquisition time for PLANET was ~5 min; 2 min faster than spin echo and 8 times slower than bSSFP. However, PLANET simultaneously reconstructed T(1), T(2), B(0) maps besides mapping ϕ(±). In the phantom, PLANET‐based conductivity matched the true value and had the smallest spread of the three methods. In vivo, PLANET‐based conductivity was similar to spin echo‐based conductivity. CONCLUSION: Provided that appropriate sequence parameters are used, PLANET delivers accurate and precise ϕ(±) maps, which can be used to reconstruct brain tissue conductivity while simultaneously recovering T(1), T(2), and B(0) maps. John Wiley and Sons Inc. 2019-09-04 2020-02 /pmc/articles/PMC6900152/ /pubmed/31483520 http://dx.doi.org/10.1002/mrm.27958 Text en © 2019 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-nd/4.0/ License, which permits use and distribution in any medium, provided the original work is properly cited, the use is non‐commercial and no modifications or adaptations are made.
spellingShingle Full Papers—Imaging Methodology
Gavazzi, Soraya
Shcherbakova, Yulia
Bartels, Lambertus W.
Stalpers, Lukas J. A.
Lagendijk, Jan J. W.
Crezee, Hans
van den Berg, Cornelis A. T.
van Lier, Astrid L. H. M. W.
Transceive phase mapping using the PLANET method and its application for conductivity mapping in the brain
title Transceive phase mapping using the PLANET method and its application for conductivity mapping in the brain
title_full Transceive phase mapping using the PLANET method and its application for conductivity mapping in the brain
title_fullStr Transceive phase mapping using the PLANET method and its application for conductivity mapping in the brain
title_full_unstemmed Transceive phase mapping using the PLANET method and its application for conductivity mapping in the brain
title_short Transceive phase mapping using the PLANET method and its application for conductivity mapping in the brain
title_sort transceive phase mapping using the planet method and its application for conductivity mapping in the brain
topic Full Papers—Imaging Methodology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6900152/
https://www.ncbi.nlm.nih.gov/pubmed/31483520
http://dx.doi.org/10.1002/mrm.27958
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