Lu_2023_Lab.Chip__

Reference

Title : Proof-of-concept optimization of a copper-mediated (18)F-radiosynthesis of a novel MAGL PET tracer on a high-throughput microdroplet platform and its macroscale translation - Lu_2023_Lab.Chip__
Author(s) : Lu Y , He Y , Schibli R , Mu L , van Dam RM
Ref : Lab Chip , : , 2023
Abstract :

Copper-mediated radiofluorination has demonstrated remarkable potential in forming aromatic C-(18)F bonds of radioligands for positron emission tomography (PET). Achieving optimal results often requires optimization efforts, requiring a substantial amount of radiolabeling precursor and time, severely limiting the experimental throughput. Recently, we successfully showcased the feasibility of performing and optimizing Cu-mediated radiosynthesis on a high-throughput microdroplet platform using the well-known and clinically used radioligand [(18)F]FDOPA as an illustrative example. In our current work, we optimized the Cu-mediated synthesis of a novel monoacylglycerol lipase (MAGL) PET tracer ([(18)F]YH149), showing the versatility of droplet-based techniques for early stage tracer development. Across 5 days, we conducted a total of 117 experiments, studying 36 distinct conditions, while utilizing <15 mg of total organoboron precursor. Compared to the original report in which the radiochemical yield (RCY) was 4.4 +/- 0.5% (n = 5), the optimized droplet condition provided a substantial improvement in RCY (52 +/- 8%, n = 4) and showed excellent radiochemical purity (100%) and molar activity (77-854 GBq micromol(-1)), using a starting activity of 0.2-1.45 GBq. Furthermore, we showed for the first time a translation of the optimized microscale conditions to a vial-based method. With similar starting activity (0.2-1.44 GBq), the translated synthesis exhibited a comparable RCY of 50 +/- 10% (n = 4) while maintaining excellent radiochemical purity (100%) and acceptable molar activity (20-46 GBq micromol(-1)). The successful translation to vial-based reactions ensures wider applicability of the optimized synthesis by leveraging widely available commercial vial-based synthesis modules.

PubMedSearch : Lu_2023_Lab.Chip__
PubMedID: 37818614

Related information

Inhibitor YH149

Citations formats

Lu Y, He Y, Schibli R, Mu L, van Dam RM (2023)
Proof-of-concept optimization of a copper-mediated (18)F-radiosynthesis of a novel MAGL PET tracer on a high-throughput microdroplet platform and its macroscale translation
Lab Chip :

Lu Y, He Y, Schibli R, Mu L, van Dam RM (2023)
Lab Chip :