Radiosynthesis and evaluation of novel 18 F labeled PET ligands for imaging monoacylglycerol lipase

Monoacylglycerol lipase (MAGL) is a 33 kDa cytosolic serine hydrolase that is widely distributed in the central nervous system and peripheral tissues. MAGL hydrolyzes monoacylglycerols into fatty acids and glycerol, playing a crucial role in endocannabinoid degradation. Inhibition of MAGL in the bra...

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Veröffentlicht in:European journal of medicinal chemistry 2025-01, Vol.285, p.117246
Hauptverfasser: Li, Yinlong, Mori, Wakana, Chaudhary, Ahmad, Zhao, Chunyu, Yamasaki, Tomoteru, Zhang, Zachary, Feng, Siyan, Ware, Tim, Rong, Jian, Fujinaga, Masayuki, Chen, Jiahui, Kumata, Katsushi, Zhang, Yiding, Hu, Kuan, Xie, Lin, Zhou, Xin, Song, Zhendong, Gao, Yabiao, Sun, Zhenkun, Patel, Jimmy S, Zhai, Chuangyan, Yuan, Katherine Y, Collier, Thomas L, Ran, Chongzhao, Collin, Ludovic, Haider, Achi, Grether, Uwe, Wittwer, Matthias B, Cravatt, Benjamin F, Zhang, Ming-Rong, Liang, Steven H
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Sprache:eng
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Zusammenfassung:Monoacylglycerol lipase (MAGL) is a 33 kDa cytosolic serine hydrolase that is widely distributed in the central nervous system and peripheral tissues. MAGL hydrolyzes monoacylglycerols into fatty acids and glycerol, playing a crucial role in endocannabinoid degradation. Inhibition of MAGL in the brain elevates levels of 2-arachidonoylglycerol and leads to decreased pro-inflammatory prostaglandin and thromboxane production. As such, MAGL is considered a potential target for treating neuropsychiatric disorders, metabolic syndromes, and cancer. Based on a novel spirocyclic system, we synthesized two fluorinated carbamate scaffolds as reversible MAGL inhibitors (epimers: (R)-6, IC  = 18.6 nM and (S)-6, IC  = 1.6 nM). In vitro autoradiography studies of [ F](R)-6 (codenamed [ F]MAGL-2304) and [ F](S)-6 (codenamed [ F]MAGL-2305) demonstrated heterogeneous distribution and specific binding affinity to MAGL-rich brain regions. Autoradiography with MAGL knockout mouse brain tissues confirmed the binding specificity of [ F](S)-6. Dynamic PET imaging studies revealed that [ F](S)-6 exhibited limited brain uptake and homogenous distribution in rat brains. In vivo P-gp inhibition enhanced [ F](S)-6 uptake in the brain, suggesting that [ F](S)-6 constitutes a P-gp efflux substrate. This research could provide new directions in the design of MAGL PET ligands that are based on spirocyclic scaffolds.
ISSN:1768-3254
DOI:10.1016/j.ejmech.2025.117246