Exploration of commercial cyclen-based chelators for mercury-197 m/g incorporation into theranostic radiopharmaceuticals

A comprehensive investigation of the Hg coordination chemistry and Hg radiolabeling capabilities of cyclen-based commercial chelators, namely, DOTA and DOTAM (aka TCMC), along with their bifunctional counterparts, -SCN-Bn-DOTA and -SCN-Bn-TCMC, was conducted to assess the suitability of these framew...

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Published inFrontiers in chemistry Vol. 12; p. 1292566
Main Authors Randhawa, Parmissa, Carbo-Bague, Imma, Davey, Patrick R W J, Chen, Shaohuang, Merkens, Helen, Uribe, Carlos F, Zhang, Chengcheng, Tosato, Marianna, Bénard, François, Radchenko, Valery, Ramogida, Caterina F
Format Journal Article
LanguageEnglish
Published Switzerland Frontiers Media S.A 08.02.2024
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Summary:A comprehensive investigation of the Hg coordination chemistry and Hg radiolabeling capabilities of cyclen-based commercial chelators, namely, DOTA and DOTAM (aka TCMC), along with their bifunctional counterparts, -SCN-Bn-DOTA and -SCN-Bn-TCMC, was conducted to assess the suitability of these frameworks as bifunctional chelators for the Hg theranostic pair. Radiolabeling studies revealed that TCMC and DOTA exhibited low radiochemical yields (0%-6%), even when subjected to harsh conditions (80°C) and high ligand concentrations (10  M). In contrast, -SCN-Bn-TCMC and -SCN-Bn-DOTA demonstrated significantly higher Hg radiochemical yields (100% ± 0.0% and 70.9% ± 1.1%, respectively) under the same conditions. The [ Hg]Hg- -SCN-Bn-TCMC complex was kinetically inert when challenged against human serum and glutathione. To understand the differences in labeling between the commercial chelators and their bifunctional counterparts, non-radioactive Hg complexes were assessed using NMR spectroscopy and DFT calculations. The NMR spectra of Hg-TCMC and Hg- -SCN-Bn-TCMC suggested binding of the Hg ion through the cyclen backbone framework. DFT studies indicated that binding of the Hg ion within the backbone forms a thermodynamically stable product. However, competition can form between isothiocyanate binding and binding through the macrocycle, which was experimentally observed. The isothiocyanate bound coordination product was dominant at the radiochemical scale as, in comparison, the macrocycle bound product was seen at the NMR scale, agreeing with the DFT result. Furthermore, a bioconjugate of TCMC (TCMC-PSMA) targeting prostate-specific membrane antigen was synthesized and radiolabeled, resulting in an apparent molar activity of 0.089 MBq/nmol. However, the complex demonstrated significant degradation over 24 h when exposed to human serum and glutathione. Subsequently, cell binding assays were conducted, revealing a value ranging from 19.0 to 19.6 nM. This research provides crucial insight into the effectiveness of current commercial chelators in the context of Hg radiolabeling. It underscores the necessity for the development of specific and customized chelators to these unique "soft" radiometals to advance Hg radiopharmaceuticals.
Bibliography:Carolina De Aguiar Ferreira, Michigan State University, United States
Edited by: Sara Martinho Almeida Pinto, University of Coimbra, Portugal
Reviewed by: Aleksander Bilewicz, Institute of Nuclear Chemistry and Technology (INCT), Poland
ISSN:2296-2646
2296-2646
DOI:10.3389/fchem.2024.1292566