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![Technical Aspect of the Automated Synthesis and Real-Time Kinetic Evaluation of [11C]SNAP-7941](/_next/image?url=https%3A%2F%2Fcloudfront.jove.com%2FCDNSource%2Fteasers%2F59557.jpg&w=3840&q=50)
Technical Aspect of the Automated Synthesis and Real-Time Kinetic Evaluation of [11C]SNAP-7941
Published on: April 28, 2019
Radiosynthesis and Preclinical Evaluation of 11C-VA426, a Cyclooxygenase-2 Selective Ligand
Assunta Carpinelli1,2, Paolo Rainone2,3, Sara Belloli1,2
1Institute of Molecular Bioimaging and Physiology of CNR, 20090 Segrate, Italy.
Abstract:
Cyclooxygenase-2 (COX-2) is involved in the inflammatory response, and its recurrent overexpression in cancers as well as in neurodegenerative disorders has made it an important target for therapy. For this reason, noninvasive imaging of COX-2 expression may represent an important diagnostic tool. In this work, a COX-2 inhibitor analogue, VA426 [1-(4-fluorophenyl)-3-(2-methoxyethyl)-2-methyl-5-(4-(methylsulfonil)phenyl)-1H-pyrrole], was synthesized and radiolabelled with the 11C radioisotope. The ex vivo biodistribution profile of 11C-VA426 was evaluated in the brain and periphery of healthy rats and mice and in brain and periphery of inflammation models, based on the administration of LPS. 11C-VA426 synthesis with the tBuOK base showed optimal radiochemical yield (15 ± 2%) based on triflate activity, molar activity (range 37-148 GBq/μmol), and radiochemical purity (>95%). Ex vivo biodistribution studies showed a fast uptake of radioactivity but a rapid washout, except in regions expressing COX-2 (lungs, liver, and kidney) both in rats and in mice, with maximum values at 30 and 10 minutes p.i., respectively. LPS administration did not show significant effect on radioactivity accumulation. Celecoxib competition experiments performed in rats and mice treated with LPS produced a general target unrelated reduction of radioactivity concentration in all peripheral tissues and brain areas examined. Finally, in agreement with the negative results obtained from biodistribution experiments, radiometabolites analysis revealed that 11C-VA426 is highly unstable in vivo. This study indicates that the compound 11C-VA426 is not currently suitable to be used as radiopharmaceutical for PET imaging. This family of compounds needs further implementation in order to improve in vivo stability.
Insights
This study evaluated 11C-VA426, a cyclooxygenase-2 (COX-2) imaging agent. Despite successful synthesis, in vivo instability limits its use for PET imaging of COX-2 expression in inflammation and disease.
Area of Science:
- Radiochemistry and Molecular Imaging
- Pharmacology and Drug Development
Background:
- Cyclooxygenase-2 (COX-2) is implicated in inflammatory responses and is overexpressed in cancers and neurodegenerative diseases.
- Noninvasive imaging of COX-2 expression is crucial for diagnosis and therapy monitoring.
Purpose of the Study:
- To synthesize and evaluate the radiolabeled COX-2 inhibitor analogue, 11C-VA426, as a potential PET imaging agent for COX-2 expression.
- To assess the biodistribution and in vivo stability of 11C-VA426 in inflammation models.
Main Methods:
- Synthesis and radiolabeling of VA426 with carbon-11 (11C).
- Ex vivo biodistribution studies in healthy and lipopolysaccharide (LPS)-induced inflammation models in rats and mice.
- Competition studies with celecoxib and radiometabolite analysis.
Main Results:
- Optimal radiochemical yield (>95%) and molar activity (37-148 GBq/μmol) were achieved for 11C-VA426 synthesis.
- Biodistribution showed rapid uptake and washout, with limited retention in COX-2 expressing organs.
- LPS administration and celecoxib competition did not significantly alter biodistribution, and 11C-VA426 demonstrated poor in vivo stability.
Conclusions:
- The radiopharmaceutical 11C-VA426 exhibits rapid washout and poor in vivo stability, rendering it unsuitable for PET imaging of COX-2.
- Further structural modifications are necessary to enhance the in vivo stability of this class of COX-2 imaging agents.
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