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Acid-catalyzed proton exchange as a novel approach for relaxivity enhancement in Gd-HPDO3A-like complexes

A current challenge in medical diagnostics is how to obtain high MRI relaxation enhancement using Gd(III)-based contrast agents (CAs) containing the minimum concentration of Gd(III) ions. We report that in GdHPDO3A-like complexes a primary amide group located in close proximity to the coordinated hy...

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Autores principales: Leone, Loredana, Boccalon, Mariangela, Ferrauto, Giuseppe, Fábián, István, Baranyai, Zsolt, Tei, Lorenzo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8163333/
https://www.ncbi.nlm.nih.gov/pubmed/34123071
http://dx.doi.org/10.1039/d0sc02174a
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author Leone, Loredana
Boccalon, Mariangela
Ferrauto, Giuseppe
Fábián, István
Baranyai, Zsolt
Tei, Lorenzo
author_facet Leone, Loredana
Boccalon, Mariangela
Ferrauto, Giuseppe
Fábián, István
Baranyai, Zsolt
Tei, Lorenzo
author_sort Leone, Loredana
collection PubMed
description A current challenge in medical diagnostics is how to obtain high MRI relaxation enhancement using Gd(III)-based contrast agents (CAs) containing the minimum concentration of Gd(III) ions. We report that in GdHPDO3A-like complexes a primary amide group located in close proximity to the coordinated hydroxyl group can provide a strong relaxivity enhancement at slightly acidic pH. A maximum relaxivity of r(1) = 9.8 mM(−1) s(−1) (20 MHz, 298 K) at acidic pH was achieved, which is more than double that of clinically approved MRI contrast agents under identical conditions. This effect was found to strongly depend on the number of amide protons, i.e. it decreases with a secondary amide group and almost completely vanishes with a tertiary amide. This relaxivity enhancement is attributed to an acid-catalyzed proton exchange process between the metal-coordinated OH group, the amide protons and second sphere water molecules. The mechanism and kinetics of the corresponding H(+) assisted exchange process are discussed in detail and a novel simultaneous double-site proton exchange mechanism is proposed. Furthermore, (1)H and (17)O NMR relaxometry, Chemical Exchange Saturation Transfer (CEST) on the corresponding Eu(III) complexes, and thermodynamic and kinetic studies are reported. These highlight the optimal physico-chemical properties required to achieve high relaxivity with this series of Gd(III)-complexes. Thus, proton exchange provides an important opportunity to enhance the relaxivity of contrast agents, providing that labile protons close to the paramagnetic center can contribute.
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spelling pubmed-81633332021-06-11 Acid-catalyzed proton exchange as a novel approach for relaxivity enhancement in Gd-HPDO3A-like complexes Leone, Loredana Boccalon, Mariangela Ferrauto, Giuseppe Fábián, István Baranyai, Zsolt Tei, Lorenzo Chem Sci Chemistry A current challenge in medical diagnostics is how to obtain high MRI relaxation enhancement using Gd(III)-based contrast agents (CAs) containing the minimum concentration of Gd(III) ions. We report that in GdHPDO3A-like complexes a primary amide group located in close proximity to the coordinated hydroxyl group can provide a strong relaxivity enhancement at slightly acidic pH. A maximum relaxivity of r(1) = 9.8 mM(−1) s(−1) (20 MHz, 298 K) at acidic pH was achieved, which is more than double that of clinically approved MRI contrast agents under identical conditions. This effect was found to strongly depend on the number of amide protons, i.e. it decreases with a secondary amide group and almost completely vanishes with a tertiary amide. This relaxivity enhancement is attributed to an acid-catalyzed proton exchange process between the metal-coordinated OH group, the amide protons and second sphere water molecules. The mechanism and kinetics of the corresponding H(+) assisted exchange process are discussed in detail and a novel simultaneous double-site proton exchange mechanism is proposed. Furthermore, (1)H and (17)O NMR relaxometry, Chemical Exchange Saturation Transfer (CEST) on the corresponding Eu(III) complexes, and thermodynamic and kinetic studies are reported. These highlight the optimal physico-chemical properties required to achieve high relaxivity with this series of Gd(III)-complexes. Thus, proton exchange provides an important opportunity to enhance the relaxivity of contrast agents, providing that labile protons close to the paramagnetic center can contribute. The Royal Society of Chemistry 2020-07-06 /pmc/articles/PMC8163333/ /pubmed/34123071 http://dx.doi.org/10.1039/d0sc02174a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Leone, Loredana
Boccalon, Mariangela
Ferrauto, Giuseppe
Fábián, István
Baranyai, Zsolt
Tei, Lorenzo
Acid-catalyzed proton exchange as a novel approach for relaxivity enhancement in Gd-HPDO3A-like complexes
title Acid-catalyzed proton exchange as a novel approach for relaxivity enhancement in Gd-HPDO3A-like complexes
title_full Acid-catalyzed proton exchange as a novel approach for relaxivity enhancement in Gd-HPDO3A-like complexes
title_fullStr Acid-catalyzed proton exchange as a novel approach for relaxivity enhancement in Gd-HPDO3A-like complexes
title_full_unstemmed Acid-catalyzed proton exchange as a novel approach for relaxivity enhancement in Gd-HPDO3A-like complexes
title_short Acid-catalyzed proton exchange as a novel approach for relaxivity enhancement in Gd-HPDO3A-like complexes
title_sort acid-catalyzed proton exchange as a novel approach for relaxivity enhancement in gd-hpdo3a-like complexes
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8163333/
https://www.ncbi.nlm.nih.gov/pubmed/34123071
http://dx.doi.org/10.1039/d0sc02174a
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