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Synthesis, Fluorine-18 Radiolabeling, and In Vivo PET Imaging of a Hydrophilic Fluorosulfotetrazine

The development of (18)F-fluorotetrazines, suitable for the radiolabeling of biologics such as proteins and antibodies by IEDDA ligation, represents a major challenge, especially for pre-targeting applications. The hydrophilicity of the tetrazine has clearly become a crucial parameter for the perfor...

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Autores principales: Beaufrez, Jason, Guillouet, Stéphane, Seimbille, Yann, Perrio, Cécile
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10221973/
https://www.ncbi.nlm.nih.gov/pubmed/37242419
http://dx.doi.org/10.3390/ph16050636
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author Beaufrez, Jason
Guillouet, Stéphane
Seimbille, Yann
Perrio, Cécile
author_facet Beaufrez, Jason
Guillouet, Stéphane
Seimbille, Yann
Perrio, Cécile
author_sort Beaufrez, Jason
collection PubMed
description The development of (18)F-fluorotetrazines, suitable for the radiolabeling of biologics such as proteins and antibodies by IEDDA ligation, represents a major challenge, especially for pre-targeting applications. The hydrophilicity of the tetrazine has clearly become a crucial parameter for the performance of in vivo chemistry. In this study, we present the design, the synthesis, the radiosynthesis, the physicochemical characterization, the in vitro and in vivo stability, as well as the pharmacokinetics and the biodistribution determined by PET imaging in healthy animals of an original hydrophilic (18)F-fluorosulfotetrazine. This tetrazine was prepared and radiolabelled with fluorine-18 according to a three-step procedure, starting from propargylic butanesultone as the precursor. The propargylic sultone was converted into the corresponding propargylic fluorosulfonate by a ring-opening reaction with (18/19)F-fluoride. Propargylic (18/19)F-fluorosulfonate was then subject to a CuACC reaction with an azidotetrazine, followed by oxidation. The overall automated radiosynthesis afforded the (18)F-fluorosulfotetrazine in 29–35% DCY, within 90–95 min. The experimental LogP and LogD(7.4) values of −1.27 ± 0.02 and −1.70 ± 0.02, respectively, confirmed the hydrophilicity of the (18)F-fluorosulfotetrazine. In vitro and in vivo studies displayed a total stability of the (18)F-fluorosulfotetrazine without any traces of metabolization, the absence of non-specific retention in all organs, and the appropriate pharmacokinetics for pre-targeting applications.
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spelling pubmed-102219732023-05-28 Synthesis, Fluorine-18 Radiolabeling, and In Vivo PET Imaging of a Hydrophilic Fluorosulfotetrazine Beaufrez, Jason Guillouet, Stéphane Seimbille, Yann Perrio, Cécile Pharmaceuticals (Basel) Article The development of (18)F-fluorotetrazines, suitable for the radiolabeling of biologics such as proteins and antibodies by IEDDA ligation, represents a major challenge, especially for pre-targeting applications. The hydrophilicity of the tetrazine has clearly become a crucial parameter for the performance of in vivo chemistry. In this study, we present the design, the synthesis, the radiosynthesis, the physicochemical characterization, the in vitro and in vivo stability, as well as the pharmacokinetics and the biodistribution determined by PET imaging in healthy animals of an original hydrophilic (18)F-fluorosulfotetrazine. This tetrazine was prepared and radiolabelled with fluorine-18 according to a three-step procedure, starting from propargylic butanesultone as the precursor. The propargylic sultone was converted into the corresponding propargylic fluorosulfonate by a ring-opening reaction with (18/19)F-fluoride. Propargylic (18/19)F-fluorosulfonate was then subject to a CuACC reaction with an azidotetrazine, followed by oxidation. The overall automated radiosynthesis afforded the (18)F-fluorosulfotetrazine in 29–35% DCY, within 90–95 min. The experimental LogP and LogD(7.4) values of −1.27 ± 0.02 and −1.70 ± 0.02, respectively, confirmed the hydrophilicity of the (18)F-fluorosulfotetrazine. In vitro and in vivo studies displayed a total stability of the (18)F-fluorosulfotetrazine without any traces of metabolization, the absence of non-specific retention in all organs, and the appropriate pharmacokinetics for pre-targeting applications. MDPI 2023-04-22 /pmc/articles/PMC10221973/ /pubmed/37242419 http://dx.doi.org/10.3390/ph16050636 Text en © 2023 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
Beaufrez, Jason
Guillouet, Stéphane
Seimbille, Yann
Perrio, Cécile
Synthesis, Fluorine-18 Radiolabeling, and In Vivo PET Imaging of a Hydrophilic Fluorosulfotetrazine
title Synthesis, Fluorine-18 Radiolabeling, and In Vivo PET Imaging of a Hydrophilic Fluorosulfotetrazine
title_full Synthesis, Fluorine-18 Radiolabeling, and In Vivo PET Imaging of a Hydrophilic Fluorosulfotetrazine
title_fullStr Synthesis, Fluorine-18 Radiolabeling, and In Vivo PET Imaging of a Hydrophilic Fluorosulfotetrazine
title_full_unstemmed Synthesis, Fluorine-18 Radiolabeling, and In Vivo PET Imaging of a Hydrophilic Fluorosulfotetrazine
title_short Synthesis, Fluorine-18 Radiolabeling, and In Vivo PET Imaging of a Hydrophilic Fluorosulfotetrazine
title_sort synthesis, fluorine-18 radiolabeling, and in vivo pet imaging of a hydrophilic fluorosulfotetrazine
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10221973/
https://www.ncbi.nlm.nih.gov/pubmed/37242419
http://dx.doi.org/10.3390/ph16050636
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