Cargando…

Combining chemical exchange saturation transfer and (1)H magnetic resonance spectroscopy for simultaneous determination of metabolite concentrations and effects of magnetization exchange

PURPOSE: A new sequence combining chemical‐exchange saturation‐transfer (CEST) with traditional MRS is used to simultaneously determine metabolite content and effects of magnetization exchange. METHODS: A CEST saturation block consisting of a train of RF‐pulses is placed before a metabolite‐cycled s...

Descripción completa

Detalles Bibliográficos
Autores principales: Hoefemann, Maike, Döring, André, Fichtner, Nicole Damara, Kreis, Roland
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/PMC7821128/
https://www.ncbi.nlm.nih.gov/pubmed/33151011
http://dx.doi.org/10.1002/mrm.28574
_version_ 1783639351160209408
author Hoefemann, Maike
Döring, André
Fichtner, Nicole Damara
Kreis, Roland
author_facet Hoefemann, Maike
Döring, André
Fichtner, Nicole Damara
Kreis, Roland
author_sort Hoefemann, Maike
collection PubMed
description PURPOSE: A new sequence combining chemical‐exchange saturation‐transfer (CEST) with traditional MRS is used to simultaneously determine metabolite content and effects of magnetization exchange. METHODS: A CEST saturation block consisting of a train of RF‐pulses is placed before a metabolite‐cycled semi‐LASER single‐voxel spectroscopy sequence. The saturation parameters are adjustable to allow optimization of the saturation for a specific target. Data were collected in brain from 20 subjects in experiments with different B(1)‐settings (0.4‐2.0 µT) on a 3T MR scanner. CEST Z‐spectra were calculated from water intensities and fitted with a multi‐pool Lorentzian model. Interrelated metabolite spectra were fitted in fitting tool for arrays of interrelated datasets (FiTAID). RESULTS: Evaluation of traditional Z‐spectra from water revealed exchange effects from amides, amines, and hydroxyls as well as an upfield nuclear Overhauser effect. The magnetization transfer effect was evaluated on metabolites and macromolecules for the whole spectral range and for the different B(1) levels. A correction scheme for direct saturation on metabolites is proposed. Both magnetization‐transfer and direct saturation proved to differ for individual metabolites. CONCLUSION: Using non‐water‐suppressed spectroscopy offers time‐saving simultaneous recording of the traditional CEST Z‐spectrum from water and the metabolite spectrum under frequency‐selective saturation. In addition, exchange and magnetization‐transfer effects on metabolites and macromolecules can be detected, which might offer additional possibilities for quantification or give further insight into the composition of the traditional CEST Z‐spectrum. Apparent magnetization‐transfer effects on macromolecular signals in the (1)H‐MR spectrum have been found. Detailed knowledge of magnetization‐transfer effects is also relevant for judging the influence of water‐suppression on the quantification of metabolite signals.
format Online
Article
Text
id pubmed-7821128
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-78211282021-01-26 Combining chemical exchange saturation transfer and (1)H magnetic resonance spectroscopy for simultaneous determination of metabolite concentrations and effects of magnetization exchange Hoefemann, Maike Döring, André Fichtner, Nicole Damara Kreis, Roland Magn Reson Med Full Papers—Spectroscopic Methodology PURPOSE: A new sequence combining chemical‐exchange saturation‐transfer (CEST) with traditional MRS is used to simultaneously determine metabolite content and effects of magnetization exchange. METHODS: A CEST saturation block consisting of a train of RF‐pulses is placed before a metabolite‐cycled semi‐LASER single‐voxel spectroscopy sequence. The saturation parameters are adjustable to allow optimization of the saturation for a specific target. Data were collected in brain from 20 subjects in experiments with different B(1)‐settings (0.4‐2.0 µT) on a 3T MR scanner. CEST Z‐spectra were calculated from water intensities and fitted with a multi‐pool Lorentzian model. Interrelated metabolite spectra were fitted in fitting tool for arrays of interrelated datasets (FiTAID). RESULTS: Evaluation of traditional Z‐spectra from water revealed exchange effects from amides, amines, and hydroxyls as well as an upfield nuclear Overhauser effect. The magnetization transfer effect was evaluated on metabolites and macromolecules for the whole spectral range and for the different B(1) levels. A correction scheme for direct saturation on metabolites is proposed. Both magnetization‐transfer and direct saturation proved to differ for individual metabolites. CONCLUSION: Using non‐water‐suppressed spectroscopy offers time‐saving simultaneous recording of the traditional CEST Z‐spectrum from water and the metabolite spectrum under frequency‐selective saturation. In addition, exchange and magnetization‐transfer effects on metabolites and macromolecules can be detected, which might offer additional possibilities for quantification or give further insight into the composition of the traditional CEST Z‐spectrum. Apparent magnetization‐transfer effects on macromolecular signals in the (1)H‐MR spectrum have been found. Detailed knowledge of magnetization‐transfer effects is also relevant for judging the influence of water‐suppression on the quantification of metabolite signals. John Wiley and Sons Inc. 2020-11-05 2021-04 /pmc/articles/PMC7821128/ /pubmed/33151011 http://dx.doi.org/10.1002/mrm.28574 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-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—Spectroscopic Methodology
Hoefemann, Maike
Döring, André
Fichtner, Nicole Damara
Kreis, Roland
Combining chemical exchange saturation transfer and (1)H magnetic resonance spectroscopy for simultaneous determination of metabolite concentrations and effects of magnetization exchange
title Combining chemical exchange saturation transfer and (1)H magnetic resonance spectroscopy for simultaneous determination of metabolite concentrations and effects of magnetization exchange
title_full Combining chemical exchange saturation transfer and (1)H magnetic resonance spectroscopy for simultaneous determination of metabolite concentrations and effects of magnetization exchange
title_fullStr Combining chemical exchange saturation transfer and (1)H magnetic resonance spectroscopy for simultaneous determination of metabolite concentrations and effects of magnetization exchange
title_full_unstemmed Combining chemical exchange saturation transfer and (1)H magnetic resonance spectroscopy for simultaneous determination of metabolite concentrations and effects of magnetization exchange
title_short Combining chemical exchange saturation transfer and (1)H magnetic resonance spectroscopy for simultaneous determination of metabolite concentrations and effects of magnetization exchange
title_sort combining chemical exchange saturation transfer and (1)h magnetic resonance spectroscopy for simultaneous determination of metabolite concentrations and effects of magnetization exchange
topic Full Papers—Spectroscopic Methodology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7821128/
https://www.ncbi.nlm.nih.gov/pubmed/33151011
http://dx.doi.org/10.1002/mrm.28574
work_keys_str_mv AT hoefemannmaike combiningchemicalexchangesaturationtransferand1hmagneticresonancespectroscopyforsimultaneousdeterminationofmetaboliteconcentrationsandeffectsofmagnetizationexchange
AT doringandre combiningchemicalexchangesaturationtransferand1hmagneticresonancespectroscopyforsimultaneousdeterminationofmetaboliteconcentrationsandeffectsofmagnetizationexchange
AT fichtnernicoledamara combiningchemicalexchangesaturationtransferand1hmagneticresonancespectroscopyforsimultaneousdeterminationofmetaboliteconcentrationsandeffectsofmagnetizationexchange
AT kreisroland combiningchemicalexchangesaturationtransferand1hmagneticresonancespectroscopyforsimultaneousdeterminationofmetaboliteconcentrationsandeffectsofmagnetizationexchange