Cargando…

Singlet‐Contrast Magnetic Resonance Imaging: Unlocking Hyperpolarization with Metabolism

Hyperpolarization‐enhanced magnetic resonance imaging can be used to study biomolecular processes in the body, but typically requires nuclei such as (13)C, (15)N, or (129)Xe due to their long spin‐polarization lifetimes and the absence of a proton‐background signal from water and fat in the images....

Descripción completa

Detalles Bibliográficos
Autores principales: Eills, J., Cavallari, E., Kircher, R., Di Matteo, G., Carrera, C., Dagys, L., Levitt, M. H., Ivanov, K. L., Aime, S., Reineri, F., Münnemann, K., Budker, D., Buntkowsky, G., Knecht, S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7986935/
https://www.ncbi.nlm.nih.gov/pubmed/33340439
http://dx.doi.org/10.1002/anie.202014933
_version_ 1783668539531460608
author Eills, J.
Cavallari, E.
Kircher, R.
Di Matteo, G.
Carrera, C.
Dagys, L.
Levitt, M. H.
Ivanov, K. L.
Aime, S.
Reineri, F.
Münnemann, K.
Budker, D.
Buntkowsky, G.
Knecht, S.
author_facet Eills, J.
Cavallari, E.
Kircher, R.
Di Matteo, G.
Carrera, C.
Dagys, L.
Levitt, M. H.
Ivanov, K. L.
Aime, S.
Reineri, F.
Münnemann, K.
Budker, D.
Buntkowsky, G.
Knecht, S.
author_sort Eills, J.
collection PubMed
description Hyperpolarization‐enhanced magnetic resonance imaging can be used to study biomolecular processes in the body, but typically requires nuclei such as (13)C, (15)N, or (129)Xe due to their long spin‐polarization lifetimes and the absence of a proton‐background signal from water and fat in the images. Here we present a novel type of (1)H imaging, in which hyperpolarized spin order is locked in a nonmagnetic long‐lived correlated (singlet) state, and is only liberated for imaging by a specific biochemical reaction. In this work we produce hyperpolarized fumarate via chemical reaction of a precursor molecule with para‐enriched hydrogen gas, and the proton singlet order in fumarate is released as antiphase NMR signals by enzymatic conversion to malate in D(2)O. Using this model system we show two pulse sequences to rephase the NMR signals for imaging and suppress the background signals from water. The hyperpolarization‐enhanced (1)H‐imaging modality presented here can allow for hyperpolarized imaging without the need for low‐abundance, low‐sensitivity heteronuclei.
format Online
Article
Text
id pubmed-7986935
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-79869352021-03-25 Singlet‐Contrast Magnetic Resonance Imaging: Unlocking Hyperpolarization with Metabolism Eills, J. Cavallari, E. Kircher, R. Di Matteo, G. Carrera, C. Dagys, L. Levitt, M. H. Ivanov, K. L. Aime, S. Reineri, F. Münnemann, K. Budker, D. Buntkowsky, G. Knecht, S. Angew Chem Int Ed Engl Research Articles Hyperpolarization‐enhanced magnetic resonance imaging can be used to study biomolecular processes in the body, but typically requires nuclei such as (13)C, (15)N, or (129)Xe due to their long spin‐polarization lifetimes and the absence of a proton‐background signal from water and fat in the images. Here we present a novel type of (1)H imaging, in which hyperpolarized spin order is locked in a nonmagnetic long‐lived correlated (singlet) state, and is only liberated for imaging by a specific biochemical reaction. In this work we produce hyperpolarized fumarate via chemical reaction of a precursor molecule with para‐enriched hydrogen gas, and the proton singlet order in fumarate is released as antiphase NMR signals by enzymatic conversion to malate in D(2)O. Using this model system we show two pulse sequences to rephase the NMR signals for imaging and suppress the background signals from water. The hyperpolarization‐enhanced (1)H‐imaging modality presented here can allow for hyperpolarized imaging without the need for low‐abundance, low‐sensitivity heteronuclei. John Wiley and Sons Inc. 2021-02-11 2021-03-15 /pmc/articles/PMC7986935/ /pubmed/33340439 http://dx.doi.org/10.1002/anie.202014933 Text en © 2020 The Authors. Angewandte Chemie International Edition published by Wiley-VCH GmbH 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 Research Articles
Eills, J.
Cavallari, E.
Kircher, R.
Di Matteo, G.
Carrera, C.
Dagys, L.
Levitt, M. H.
Ivanov, K. L.
Aime, S.
Reineri, F.
Münnemann, K.
Budker, D.
Buntkowsky, G.
Knecht, S.
Singlet‐Contrast Magnetic Resonance Imaging: Unlocking Hyperpolarization with Metabolism
title Singlet‐Contrast Magnetic Resonance Imaging: Unlocking Hyperpolarization with Metabolism
title_full Singlet‐Contrast Magnetic Resonance Imaging: Unlocking Hyperpolarization with Metabolism
title_fullStr Singlet‐Contrast Magnetic Resonance Imaging: Unlocking Hyperpolarization with Metabolism
title_full_unstemmed Singlet‐Contrast Magnetic Resonance Imaging: Unlocking Hyperpolarization with Metabolism
title_short Singlet‐Contrast Magnetic Resonance Imaging: Unlocking Hyperpolarization with Metabolism
title_sort singlet‐contrast magnetic resonance imaging: unlocking hyperpolarization with metabolism
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7986935/
https://www.ncbi.nlm.nih.gov/pubmed/33340439
http://dx.doi.org/10.1002/anie.202014933
work_keys_str_mv AT eillsj singletcontrastmagneticresonanceimagingunlockinghyperpolarizationwithmetabolism
AT cavallarie singletcontrastmagneticresonanceimagingunlockinghyperpolarizationwithmetabolism
AT kircherr singletcontrastmagneticresonanceimagingunlockinghyperpolarizationwithmetabolism
AT dimatteog singletcontrastmagneticresonanceimagingunlockinghyperpolarizationwithmetabolism
AT carrerac singletcontrastmagneticresonanceimagingunlockinghyperpolarizationwithmetabolism
AT dagysl singletcontrastmagneticresonanceimagingunlockinghyperpolarizationwithmetabolism
AT levittmh singletcontrastmagneticresonanceimagingunlockinghyperpolarizationwithmetabolism
AT ivanovkl singletcontrastmagneticresonanceimagingunlockinghyperpolarizationwithmetabolism
AT aimes singletcontrastmagneticresonanceimagingunlockinghyperpolarizationwithmetabolism
AT reinerif singletcontrastmagneticresonanceimagingunlockinghyperpolarizationwithmetabolism
AT munnemannk singletcontrastmagneticresonanceimagingunlockinghyperpolarizationwithmetabolism
AT budkerd singletcontrastmagneticresonanceimagingunlockinghyperpolarizationwithmetabolism
AT buntkowskyg singletcontrastmagneticresonanceimagingunlockinghyperpolarizationwithmetabolism
AT knechts singletcontrastmagneticresonanceimagingunlockinghyperpolarizationwithmetabolism