n -芳基-恶二唑丙酰胺作为大麻素CB2受体PET成像潜在放射配体的放射性氟化和生物学评价。

Rodrigo Teodoro, Rareş-Petru Moldovan, Corinna Lueg, Robert Günther, Cornelius K Donat, Friedrich-Alexander Ludwig, Steffen Fischer, Winnie Deuther-Conrad, Bernhard Wünsch, Peter Brust
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引用次数: 25

摘要

背景:大麻素受体2型(CB2R)在健康和患病大脑中的表达水平尚未完全阐明。因此,评估脑中CB2R的区域表达越来越受到关注。正电子发射断层扫描(PET)是一种成像技术,它可以在高时间和空间分辨率下定量监测生物体中极少量的放射性标记化合物,因此已被广泛用作核医学的诊断工具。在这里,我们报道了n -芳基-恶二唑基丙酰胺在铅结构的两个不同位置的放射性氟化,并对两种示踪剂[18F]1和[18F]2作为CB2受体PET显像剂的潜力进行了生物学评价。结果:铅结构对CB2受体的高结合亲和力和特异性不受结构变化的影响,如在1和2的选定标记位点插入脂肪族氟和芳族氟。对脂肪族和芳香族的放射性氟化进行了优化,得到[18F]1和[18F]2的放射化学产率≥30%,放射化学纯度≥98%,比活性为250 ~ 450 GBq/μmol。雌性CD1小鼠的器官分布研究表明,这两种放射性示踪剂穿过血脑屏障(BBB),但经历强烈的外周代谢。注射后30 min,未代谢的[18F]1和[18F]2分别占血浆和脑内总活性的60%和2%,占68%和88%。[18F]2的主要放射性代谢物可以确定为游离酸[18F]10,它对CB1和CB2受体没有亲和力,但可以穿过血脑屏障。结论:n -芳基-恶二唑丙酰胺在不同位置均可成功地用18F进行放射性标记。这些位置的氟取代不影响对CB2R的亲和力和特异性。尽管在体外表现良好,但小鼠体内[18F]1和[18F]2的外周代谢相当快,以及脑渗透放射性代谢物的产生阻碍了这些放射性示踪剂在体内的应用。然而,预计未来旨在替代[18F]1和[18F]2代谢敏感结构元件的合成修饰将有助于阐明这类化合物在CB2R PET研究中的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Radiofluorination and biological evaluation of N-aryl-oxadiazolyl-propionamides as potential radioligands for PET imaging of cannabinoid CB2 receptors.

Background: The level of expression of cannabinoid receptor type 2 (CB2R) in healthy and diseased brain has not been fully elucidated. Therefore, there is a growing interest to assess the regional expression of CB2R in the brain. Positron emission tomography (PET) is an imaging technique, which allows quantitative monitoring of very low amounts of radiolabelled compounds in living organisms at high temporal and spatial resolution and, thus, has been widely used as a diagnostic tool in nuclear medicine. Here, we report on the radiofluorination of N-aryl-oxadiazolyl-propionamides at two different positions in the lead structure and on the biological evaluation of the potential of the two tracers [18F]1 and [18F]2 as CB2 receptor PET imaging agents.

Results: High binding affinity and specificity towards CB2 receptors of the lead structure remained unaffected by the structural changes such as the insertion of the aliphatic and aromatic fluorine in the selected labelling sites of 1 and 2. Aliphatic and aromatic radiofluorinations were optimized, and [18F]1 and [18F]2 were achieved in radiochemical yields of ≥30% with radiochemical purities of ≥98% and specific activities of 250 to 450 GBq/μmol. Organ distribution studies in female CD1 mice revealed that both radiotracers cross the blood-brain barrier (BBB) but undergo strong peripheral metabolism. At 30 min after injection, unmetabolized [18F]1 and [18F]2 accounted for 60% and 2% as well as 68% and 88% of the total activity in the plasma and brain, respectively. The main radiometabolite of [18F]2 could be identified as the free acid [18F]10, which has no affinity towards the CB1 and CB2 receptors but can cross the BBB.

Conclusions: N-aryl-oxadiazolyl-propionamides can successfully be radiolabelled with 18F at different positions. Fluorine substitution at these positions did not affect affinity and specificity towards CB2R. Despite a promising in vitro behavior, a rather rapid peripheral metabolism of [18F]1 and [18F]2 in mice and the generation of brain permeable radiometabolites hamper the application of these radiotracers in vivo. However, it is expected that future synthetic modification aiming at a replacement of metabolically susceptible structural elements of [18F]1 and [18F]2 will help to elucidate the potential of this class of compounds for CB2R PET studies.

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