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Radiosynthesis and Evaluation of 11C-CIMBI-5 as a 5-HT2A Receptor Agonist Radioligand for PET

Anders Ettrup, Mikael Palner, Nic Gillings, Martin A. Santini, Martin Hansen, Birgitte Rahbek Kornum, Lars K. Rasmussen, Kjell Någren, Jacob Madsen, Mikael Begtrup, Gitte M. Knudsen

Journal of Nuclear Medicine October 18, 2010 DOI: 10.2967/jnumed.109.074021 via OpenAlex

Summary

AI-generated from the abstract

A radiolabeled agonist tracer, (11)C-CIMBI-5, was developed for PET imaging of the serotonin 2A (5-HT2A) receptor in the brain. In vitro assays showed CIMBI-5 is a high-affinity agonist at the 5-HT2A receptor. Ex vivo rat studies demonstrated a specific binding ratio of 0.77 ± 0.07 in the frontal cortex, which was reduced to cerebellar levels after ketanserin treatment, indicating selective binding. PET studies in pigs revealed a cortical binding potential of 0.46 ± 0.12 and a target-to-background ratio similar to the antagonist tracer (18)F-altanserin. Ketanserin treatment reduced cortical binding to cerebellar levels, confirming selective in vivo binding. (11)C-CIMBI-5 is a promising tool for investigating 5-HT2A agonist binding in the living human brain.

Study at a glance

Characteristics Preclinical study Peer reviewed
Population Rats and pigs
Interventions (11)C-CIMBI-5 ketanserin
Keywords Radioligand Agonist Receptor Radiosynthesis In vivo
Citations 50
Key finding (11)C-CIMBI-5 showed selective binding to the 5-HT2A receptor in rat and pig brains with a target-to-background ratio similar to the antagonist tracer (18)F-altanserin.

Abstract

UNLABELLED: PET brain imaging of the serotonin 2A (5-hydroxytryptamine 2A, or 5-HT(2A)) receptor has been widely used in clinical studies, and currently, several well-validated radiolabeled antagonist tracers are used for in vivo imaging of the cerebral 5-HT(2A) receptor. Access to 5-HT(2A) receptor agonist PET tracers would, however, enable imaging of the active, high-affinity state of receptors, which may provide a more meaningful assessment of membrane-bound receptors. In this study, we radiolabel the high-affinity 5-HT(2A) receptor agonist 2-(4-iodo-2,5-dimethoxyphenyl)-N-(2-[(11)C-OCH(3)]methoxybenzyl)ethanamine ((11)C-CIMBI-5) and investigate its potential as a PET tracer. METHODS: The in vitro binding and activation at 5-HT(2A) receptors by CIMBI-5 was measured with binding and phosphoinositide hydrolysis assays. Ex vivo brain distribution of (11)C-CIMBI-5 was investigated in rats, and PET with (11)C-CIMBI-5 was conducted in pigs. RESULTS: In vitro assays showed that CIMBI-5 was a high-affinity agonist at the 5-HT(2A) receptor. After intravenous injections of (11)C-CIMBI-5, ex vivo rat studies showed a specific binding ratio of 0.77 ± 0.07 in the frontal cortex, which was reduced to cerebellar levels after ketanserin treatment, thus indicating that (11)C-CIMBI-5 binds selectively to the 5-HT(2A) receptor in the rat brain. The PET studies showed that the binding pattern of (11)C-CIMBI-5 in the pig brain was in accordance with the expected 5-HT(2A) receptor distribution. (11)C-CIMBI-5 gave rise to a cortical binding potential of 0.46 ± 0.12, and the target-to-background ratio was similar to that of the widely used 5-HT(2A) receptor antagonist PET tracer (18)F-altanserin. Ketanserin treatment reduced the cortical binding potentials to cerebellar levels, indicating that in vivo (11)C-CIMBI-5 binds selectively to the 5-HT(2A) receptor in the pig brain. CONCLUSION: (11)C-CIMBI-5 showed a cortex-to-cerebellum binding ratio equal to the widely used 5-HT(2A) antagonist PET tracer (18)F-altanserin, indicating that (11)C-CIMBI-5 has a sufficient target-to-background ratio for future clinical use and is displaceable by ketanserin in both rats and pigs. Thus, (11)C-CIMBI-5 is a promising tool for investigation of 5-HT(2A) agonist binding in the living human brain.

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