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pH Dependence of T(2) for Hyperpolarizable (13)C-Labelled Small Molecules Enables Spatially Resolved pH Measurement by Magnetic Resonance Imaging

Hyperpolarized (13)C magnetic resonance imaging often uses spin-echo-based pulse sequences that are sensitive to the transverse relaxation time T(2). In this context, local T(2)-changes might introduce a quantification bias to imaging biomarkers. Here, we investigated the pH dependence of the appare...

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Autores principales: Grashei, Martin, Hundshammer, Christian, van Heijster, Frits H. A., Topping, Geoffrey J., Schilling, Franz
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8067065/
https://www.ncbi.nlm.nih.gov/pubmed/33918366
http://dx.doi.org/10.3390/ph14040327
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author Grashei, Martin
Hundshammer, Christian
van Heijster, Frits H. A.
Topping, Geoffrey J.
Schilling, Franz
author_facet Grashei, Martin
Hundshammer, Christian
van Heijster, Frits H. A.
Topping, Geoffrey J.
Schilling, Franz
author_sort Grashei, Martin
collection PubMed
description Hyperpolarized (13)C magnetic resonance imaging often uses spin-echo-based pulse sequences that are sensitive to the transverse relaxation time T(2). In this context, local T(2)-changes might introduce a quantification bias to imaging biomarkers. Here, we investigated the pH dependence of the apparent transverse relaxation time constant (denoted here as T(2)) of six (13)C-labelled molecules. We obtained minimum and maximum T(2) values within pH 1–13 at 14.1 T: [1-(13)C]acetate (T(2,min) = 2.1 s; T(2,max) = 27.7 s), [1-(13)C]alanine (T(2,min) = 0.6 s; T(2,max) = 10.6 s), [1,4-(13)C(2)]fumarate (T(2,min) = 3.0 s; T(2,max) = 18.9 s), [1-(13)C]lactate (T(2,min) = 0.7 s; T(2,max) = 12.6 s), [1-(13)C]pyruvate (T(2,min) = 0.1 s; T(2,max) = 18.7 s) and (13)C-urea (T(2,min) = 0.1 s; T(2,max) = 0.1 s). At 7 T, T(2)-variation in the physiological pH range (pH 6.8–7.8) was highest for [1-(13)C]pyruvate (ΔT(2) = 0.95 s/0.1pH) and [1-(13)C]acetate (ΔT(2) = 0.44 s/0.1pH). Concentration, salt concentration, and temperature alterations caused T(2) variations of up to 45.4% for [1-(13)C]acetate and 23.6% for [1-(13)C]pyruvate. For [1-(13)C]acetate, spatially resolved pH measurements using T(2)-mapping were demonstrated with 1.6 pH units accuracy in vitro. A strong proton exchange-based pH dependence of T(2) suggests that pH alterations potentially influence signal strength for hyperpolarized (13)C-acquisitions.
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spelling pubmed-80670652021-04-25 pH Dependence of T(2) for Hyperpolarizable (13)C-Labelled Small Molecules Enables Spatially Resolved pH Measurement by Magnetic Resonance Imaging Grashei, Martin Hundshammer, Christian van Heijster, Frits H. A. Topping, Geoffrey J. Schilling, Franz Pharmaceuticals (Basel) Article Hyperpolarized (13)C magnetic resonance imaging often uses spin-echo-based pulse sequences that are sensitive to the transverse relaxation time T(2). In this context, local T(2)-changes might introduce a quantification bias to imaging biomarkers. Here, we investigated the pH dependence of the apparent transverse relaxation time constant (denoted here as T(2)) of six (13)C-labelled molecules. We obtained minimum and maximum T(2) values within pH 1–13 at 14.1 T: [1-(13)C]acetate (T(2,min) = 2.1 s; T(2,max) = 27.7 s), [1-(13)C]alanine (T(2,min) = 0.6 s; T(2,max) = 10.6 s), [1,4-(13)C(2)]fumarate (T(2,min) = 3.0 s; T(2,max) = 18.9 s), [1-(13)C]lactate (T(2,min) = 0.7 s; T(2,max) = 12.6 s), [1-(13)C]pyruvate (T(2,min) = 0.1 s; T(2,max) = 18.7 s) and (13)C-urea (T(2,min) = 0.1 s; T(2,max) = 0.1 s). At 7 T, T(2)-variation in the physiological pH range (pH 6.8–7.8) was highest for [1-(13)C]pyruvate (ΔT(2) = 0.95 s/0.1pH) and [1-(13)C]acetate (ΔT(2) = 0.44 s/0.1pH). Concentration, salt concentration, and temperature alterations caused T(2) variations of up to 45.4% for [1-(13)C]acetate and 23.6% for [1-(13)C]pyruvate. For [1-(13)C]acetate, spatially resolved pH measurements using T(2)-mapping were demonstrated with 1.6 pH units accuracy in vitro. A strong proton exchange-based pH dependence of T(2) suggests that pH alterations potentially influence signal strength for hyperpolarized (13)C-acquisitions. MDPI 2021-04-02 /pmc/articles/PMC8067065/ /pubmed/33918366 http://dx.doi.org/10.3390/ph14040327 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Grashei, Martin
Hundshammer, Christian
van Heijster, Frits H. A.
Topping, Geoffrey J.
Schilling, Franz
pH Dependence of T(2) for Hyperpolarizable (13)C-Labelled Small Molecules Enables Spatially Resolved pH Measurement by Magnetic Resonance Imaging
title pH Dependence of T(2) for Hyperpolarizable (13)C-Labelled Small Molecules Enables Spatially Resolved pH Measurement by Magnetic Resonance Imaging
title_full pH Dependence of T(2) for Hyperpolarizable (13)C-Labelled Small Molecules Enables Spatially Resolved pH Measurement by Magnetic Resonance Imaging
title_fullStr pH Dependence of T(2) for Hyperpolarizable (13)C-Labelled Small Molecules Enables Spatially Resolved pH Measurement by Magnetic Resonance Imaging
title_full_unstemmed pH Dependence of T(2) for Hyperpolarizable (13)C-Labelled Small Molecules Enables Spatially Resolved pH Measurement by Magnetic Resonance Imaging
title_short pH Dependence of T(2) for Hyperpolarizable (13)C-Labelled Small Molecules Enables Spatially Resolved pH Measurement by Magnetic Resonance Imaging
title_sort ph dependence of t(2) for hyperpolarizable (13)c-labelled small molecules enables spatially resolved ph measurement by magnetic resonance imaging
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8067065/
https://www.ncbi.nlm.nih.gov/pubmed/33918366
http://dx.doi.org/10.3390/ph14040327
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