New synthetic strategies toward DFO*: enhanced yield and purity of a key chelator for 89Zr chemistry

Background: Zirconium-89 (89Zr) is a key PET radionuclide and the limited in vivo stability of its clinically used 89Zr-DFO complexes has driven the pursuit of improved chelator architectures. Among these, DFO* has attracted particular attention due to its exceptional complex stability with 89Zr4+ a...

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Auteurs principaux: Baier, Nils (Auteur) , Miao, Minqian (Auteur) , Schirrmacher, Ralf (Auteur) , Wängler, Björn (Auteur) , Fricker, Gert (Auteur) , Wängler, Carmen (Auteur)
Format: Article (Journal)
Langue:anglais
Publié: 22 May 2026
In: Pharmaceuticals
Year: 2026, Volume: 19, Numéro: 6, Pages: 1-19
ISSN:1424-8247
DOI:10.3390/ph19060813
Accès en ligne:Verlag, kostenfrei, Volltext: https://doi.org/10.3390/ph19060813
Verlag, kostenfrei, Volltext: https://www.mdpi.com/1424-8247/19/6/813
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Notes sur l'auteur:Nils F. Baier, Minqian Miao, Ralf Schirrmacher, Björn Wängler, Gert Fricker, Carmen Wängler
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Résumé:Background: Zirconium-89 (89Zr) is a key PET radionuclide and the limited in vivo stability of its clinically used 89Zr-DFO complexes has driven the pursuit of improved chelator architectures. Among these, DFO* has attracted particular attention due to its exceptional complex stability with 89Zr4+ and favorable pharmacokinetics of the corresponding bioconjugates in vivo. Despite these advantages, DFO*’s broader application has been hampered by significant synthetic challenges, primarily arising from its pronounced acid sensitivity. Methods: Here, we present a systematic investigation of the acid lability of DFO and DFO*-derived systems, revealing substantial degradation under acidic conditions being commonly applied during preparation and purification. These findings highlight critical limitations of conventional synthetic and purification protocols. To address this, we developed two complementary synthetic routes that consistently avoid fragmentation-inducing conditions. Results: THP/Boc- and TBDPS/Fmoc-based routes provide robust five- and six-step syntheses of DFO*, affording overall yields of 11% and 13%/6.1% and high purity (≥98%) without detectable degradation. Conclusions: By systematically investigating the acid sensitivity of DFO/DFO*-based chelators and providing practical synthetic solutions, this work enables reliable access to DFO* and advances its application in 89Zr radiopharmaceutical development.
Description:Die Ziffern 89 sind im Titel hochgestellt
Gesehen am 20.07.2026
Description matérielle:Online Resource
ISSN:1424-8247
DOI:10.3390/ph19060813