Forensic Science Group, Photon Science Research Division, RIKEN SPring-8 Center, Physical Science Research Building, 1-1-1 Kouto, Sayo-cho, Sayo-gun, Hyogo, 679-5148, Japan.
Forensic Science Laboratory, Hyogo Prefectural Police Headquarters, Kobe, Japan.
Arch Toxicol. 2023 Dec;97(12):3085-3094. doi: 10.1007/s00204-023-03605-1. Epub 2023 Sep 27.
In the recreational drug market, synthetic cannabinoids with a new acetamide linker structure emerged, most likely to circumvent the law. As the knowledge of drug metabolites is vital for proving drug consumption, the phase I metabolism of the newly emerging cannabinoids, ADB-FUBIATA, AFUBIATA, CH-FUBIATA, and CH-PIATA, was investigated. Each drug (10 μmol/L) was incubated with human liver microsomes for 1 h, and the samples, after dilution, were analyzed by liquid chromatography-high-resolution mass spectrometry. All drugs were metabolized via hydroxylation and N-dealkylation, while AFUBIATA and CH-PIATA additionally underwent ketone formation. The metabolites AF7 (hydroxylated at the indole/adjacent methylene) of ADB-FUBIATA, A16 (hydroxylated at the adamantane) of AFUBIATA, CF15 (hydroxylated at the cyclohexane) of CH-FUBIATA, and CP9 (hydroxylated at the pentane) of CH-PIATA were the most abundant metabolites by considering the peak areas on the chromatograms, and are recommended for urinalysis. The structure-metabolism relationship was also discussed, which generally agreed well with previously reported metabolic pathways of other synthetic cannabinoids. However, the preferred hydroxylation site of ADB-FUBIATA, the indole/adjacent methylene, clearly differed from that of ADB-FUBICA, the 3,3-dimethylbutanamide moiety, despite their structures differing only by a methylene group, emphasizing that metabolic predictions of new drugs should not replace in vitro experimental analyses, albeit helpful.
在娱乐性毒品市场中,出现了具有新型乙酰胺连接结构的合成大麻素,这很可能是为了规避法律。由于了解药物代谢物对于证明药物消费至关重要,因此研究了新出现的大麻素 ADB-FUBIATA、AFUBIATA、CH-FUBIATA 和 CH-PIATA 的 I 相代谢。将每种药物(10 μmol/L)与人肝微粒体孵育 1 小时,稀释后样品通过液相色谱-高分辨率质谱进行分析。所有药物均通过羟化和 N-去烷基化代谢,而 AFUBIATA 和 CH-PIATA 还经历了酮形成。代谢物 AF7(吲哚/相邻亚甲基羟化)、A16(金刚烷羟化)、CF15(环己烷羟化)和 CP9(戊烷羟化)是 ADB-FUBIATA、AFUBIATA、CH-FUBIATA 和 CH-PIATA 中丰度最高的代谢物,考虑到色谱图上的峰面积,推荐用于尿液分析。还讨论了结构-代谢关系,这与其他合成大麻素的先前报道的代谢途径基本一致。然而,ADB-FUBIATA 的首选羟化部位,即吲哚/相邻亚甲基,与 ADB-FUBICA 的 3,3-二甲基丁酰胺部分明显不同,尽管它们的结构仅相差一个亚甲基,这强调了对新药的代谢预测不应替代体外实验分析,尽管这很有帮助。