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Metabolism of a Bioorthogonal PET Tracer Candidate [(19)F/(18)F]SiFA-Tetrazine in Mouse Liver Microsomes: Biotransformation Pathways and Defluorination Investigated by UHPLC-HRMS

[Image: see text] Organofluorosilicon based (18)F-radiolabeling is an efficient method for incorporating fluorine-18 into (18)F-radiopharmaceuticals for positron emission tomography (PET) by (19)F/(18)F isotopic exchange (IE). The first PET radiopharmaceutical, (18)F-SiFAlin-TATE, radiolabeled with...

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Autores principales: Otaru, Sofia, Niemikoski, Hanna, Sarparanta, Mirkka, Airaksinen, Anu J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7497667/
https://www.ncbi.nlm.nih.gov/pubmed/32539414
http://dx.doi.org/10.1021/acs.molpharmaceut.0c00523
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author Otaru, Sofia
Niemikoski, Hanna
Sarparanta, Mirkka
Airaksinen, Anu J.
author_facet Otaru, Sofia
Niemikoski, Hanna
Sarparanta, Mirkka
Airaksinen, Anu J.
author_sort Otaru, Sofia
collection PubMed
description [Image: see text] Organofluorosilicon based (18)F-radiolabeling is an efficient method for incorporating fluorine-18 into (18)F-radiopharmaceuticals for positron emission tomography (PET) by (19)F/(18)F isotopic exchange (IE). The first PET radiopharmaceutical, (18)F-SiFAlin-TATE, radiolabeled with a silicon-based [(18)F]fluoride acceptor (SiFA), namely, a para-substituted di-tert-butyl[(18)F]fluorosilylbenzene, has entered clinical trials, and is paving the way for other potential [(18)F]SiFA-labeled radiopharmaceuticals for diagnostic use. In this study, we report the in vitro metabolism of an oxime-linked SiFA tetrazine (SiFA–Tz), a new PET-radiotracer candidate, recently evaluated for pretargeted PET imaging and macromolecule labeling. Metabolism of SiFA–Tz was studied in mouse liver microsomes (MLM) for elucidating its major biotransformation pathways. Nontargeted screening by ultrahigh performance liquid chromatography high-resolution mass spectrometry (UHPLC-HRMS) was utilized for detection of unknown metabolites. The oxime bond between the SiFA and Tz groups forms two geometric (E/Z) isomers, which underwent the same biotransformations, but unexpectedly with different kinetics. In total, nine proposed metabolites of SiFA–Tz from phase I and II reactions were detected, five of which were defluorinated in MLMs, elucidating the metabolic pathway leading to previously reported defluorination of [(18)F]SiFA–Tz in vivo. Based on the HRMS studies a biotransformation pathway is proposed: hydroxylation (+O) to tert-butyl group adjacent to the silicon, followed by oxidative defluorination (+OH/-F) cleaving the fluorine off the silicon. Interestingly, eight proposed metabolites of a reduced dihydrotetrazine analogue, SiFA–H(2)Tz, from phase I and II reactions were additionally detected. To the best of our knowledge, this is the first reported comprehensive investigation of enzyme mediated metabolic pathway of tetrazines and para-substituted di-tert-butylfluorosilylbenzene fluoride acceptors, providing novel structural information on the biotransformation and fragmentation patterns of radiotracers bearing these structural motifs. By investigating the metabolism preceding defluorination, structurally optimized new SiFA compounds can be designed for expanding the portfolio of efficient (19)F/(18)F isotopic exchange labeling probes for PET imaging.
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spelling pubmed-74976672020-09-18 Metabolism of a Bioorthogonal PET Tracer Candidate [(19)F/(18)F]SiFA-Tetrazine in Mouse Liver Microsomes: Biotransformation Pathways and Defluorination Investigated by UHPLC-HRMS Otaru, Sofia Niemikoski, Hanna Sarparanta, Mirkka Airaksinen, Anu J. Mol Pharm [Image: see text] Organofluorosilicon based (18)F-radiolabeling is an efficient method for incorporating fluorine-18 into (18)F-radiopharmaceuticals for positron emission tomography (PET) by (19)F/(18)F isotopic exchange (IE). The first PET radiopharmaceutical, (18)F-SiFAlin-TATE, radiolabeled with a silicon-based [(18)F]fluoride acceptor (SiFA), namely, a para-substituted di-tert-butyl[(18)F]fluorosilylbenzene, has entered clinical trials, and is paving the way for other potential [(18)F]SiFA-labeled radiopharmaceuticals for diagnostic use. In this study, we report the in vitro metabolism of an oxime-linked SiFA tetrazine (SiFA–Tz), a new PET-radiotracer candidate, recently evaluated for pretargeted PET imaging and macromolecule labeling. Metabolism of SiFA–Tz was studied in mouse liver microsomes (MLM) for elucidating its major biotransformation pathways. Nontargeted screening by ultrahigh performance liquid chromatography high-resolution mass spectrometry (UHPLC-HRMS) was utilized for detection of unknown metabolites. The oxime bond between the SiFA and Tz groups forms two geometric (E/Z) isomers, which underwent the same biotransformations, but unexpectedly with different kinetics. In total, nine proposed metabolites of SiFA–Tz from phase I and II reactions were detected, five of which were defluorinated in MLMs, elucidating the metabolic pathway leading to previously reported defluorination of [(18)F]SiFA–Tz in vivo. Based on the HRMS studies a biotransformation pathway is proposed: hydroxylation (+O) to tert-butyl group adjacent to the silicon, followed by oxidative defluorination (+OH/-F) cleaving the fluorine off the silicon. Interestingly, eight proposed metabolites of a reduced dihydrotetrazine analogue, SiFA–H(2)Tz, from phase I and II reactions were additionally detected. To the best of our knowledge, this is the first reported comprehensive investigation of enzyme mediated metabolic pathway of tetrazines and para-substituted di-tert-butylfluorosilylbenzene fluoride acceptors, providing novel structural information on the biotransformation and fragmentation patterns of radiotracers bearing these structural motifs. By investigating the metabolism preceding defluorination, structurally optimized new SiFA compounds can be designed for expanding the portfolio of efficient (19)F/(18)F isotopic exchange labeling probes for PET imaging. American Chemical Society 2020-06-15 2020-08-03 /pmc/articles/PMC7497667/ /pubmed/32539414 http://dx.doi.org/10.1021/acs.molpharmaceut.0c00523 Text en Copyright © 2020 American Chemical Society This is an open access article published under a Creative Commons Attribution (CC-BY) License (http://pubs.acs.org/page/policy/authorchoice_ccby_termsofuse.html) , which permits unrestricted use, distribution and reproduction in any medium, provided the author and source are cited.
spellingShingle Otaru, Sofia
Niemikoski, Hanna
Sarparanta, Mirkka
Airaksinen, Anu J.
Metabolism of a Bioorthogonal PET Tracer Candidate [(19)F/(18)F]SiFA-Tetrazine in Mouse Liver Microsomes: Biotransformation Pathways and Defluorination Investigated by UHPLC-HRMS
title Metabolism of a Bioorthogonal PET Tracer Candidate [(19)F/(18)F]SiFA-Tetrazine in Mouse Liver Microsomes: Biotransformation Pathways and Defluorination Investigated by UHPLC-HRMS
title_full Metabolism of a Bioorthogonal PET Tracer Candidate [(19)F/(18)F]SiFA-Tetrazine in Mouse Liver Microsomes: Biotransformation Pathways and Defluorination Investigated by UHPLC-HRMS
title_fullStr Metabolism of a Bioorthogonal PET Tracer Candidate [(19)F/(18)F]SiFA-Tetrazine in Mouse Liver Microsomes: Biotransformation Pathways and Defluorination Investigated by UHPLC-HRMS
title_full_unstemmed Metabolism of a Bioorthogonal PET Tracer Candidate [(19)F/(18)F]SiFA-Tetrazine in Mouse Liver Microsomes: Biotransformation Pathways and Defluorination Investigated by UHPLC-HRMS
title_short Metabolism of a Bioorthogonal PET Tracer Candidate [(19)F/(18)F]SiFA-Tetrazine in Mouse Liver Microsomes: Biotransformation Pathways and Defluorination Investigated by UHPLC-HRMS
title_sort metabolism of a bioorthogonal pet tracer candidate [(19)f/(18)f]sifa-tetrazine in mouse liver microsomes: biotransformation pathways and defluorination investigated by uhplc-hrms
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7497667/
https://www.ncbi.nlm.nih.gov/pubmed/32539414
http://dx.doi.org/10.1021/acs.molpharmaceut.0c00523
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