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CUMYL-4CN-BINACA在人肝细胞和真实尿液样本中的代谢研究:在主要代谢途径中会形成游离氰化物。

Metabolism study for CUMYL-4CN-BINACA in human hepatocytes and authentic urine specimens: Free cyanide is formed during the main metabolic pathway.

作者信息

Åstrand Anna, Vikingsson Svante, Lindstedt Daniel, Thelander Gunilla, Gréen Henrik, Kronstrand Robert, Wohlfarth Ariane

机构信息

Department of Forensic Genetics and Forensic Toxicology, National Board of Forensic Medicine, Linköping, Sweden.

Division of Drug Research, Department of Medical Health Sciences, Linköping University, Linköping, Sweden.

出版信息

Drug Test Anal. 2018 Mar 25. doi: 10.1002/dta.2373.

Abstract

To further elucidate the metabolism of CUMYL-4CN-BINACA, a new synthetic cannabinoid with a cyano group, and to evaluate biomarkers, we incubated the substance in human hepatocytes and analysed 9 authentic urine specimens. We also quantified CUMYL-4CN-BINACA and cyanide in blood and provide comprehensive data on the 7 autopsy cases, 5 of them determined CUMYL-4CN-BINACA intoxications. For metabolite elucidation, CUMYL-4CN-BINACA was incubated with pooled human hepatocytes for up to 5 hours, urine samples were analysed with and without enzymatic hydrolysis. Data was acquired in data-dependent mode by ultra-high performance liquid chromatography-high resolution mass spectrometry (UHPLC-HRMS) with an Agilent 6550 QTOF. For quantitative analysis of CUMYL-4CN-BINACA, blood samples were precipitated and analysed by liquid chromatography-tandem mass spectrometry (LC-MS/MS). Cyanide was determined by gas chromatography-headspace-nitrogen phosphorus detection (GC-headspace-NPD). CUMYL-4CN-BINACA was metabolised via CYP450-mediated hydroxylation at 4-butyl position generating a cyanohydrin (M12), which releases free cyanide to form an aldehyde intermediate and eventually generates 4-hydroxybutyl CUMYL-BINACA (M11) and CUMYL-BINACA butanoic acid (M10). Other minor metabolites were produced by hydroxylation, dihydroxylation, N-dealkylation, and dihydrodiol formation; glucuronidation was observed. One urine sample showed high intensities of M10 and a wide variety of metabolites; the other samples contained fewer metabolites in low abundance and 1 sample showed no metabolites. CUMYL-4CN-BINACA blood concentrations ranged from 0.1 to 8.3 ng/g showing an overlap between fatal and non-fatal concentrations. One blood sample contained 0.36 μg/g cyanide. Release of free cyanide during metabolism is worrying as it might induce liver toxicity. As suggested earlier, CUMYL-BINACA butanoic acid is the most abundant biomarker in urine, but monitoring of additional metabolites or, even better, analysis for the parent in blood is recommended.

摘要

为了进一步阐明新型含氰合成大麻素CUMYL-4CN-BINACA的代谢情况,并评估生物标志物,我们将该物质与人肝细胞一起孵育,并分析了9份真实尿液样本。我们还对血液中的CUMYL-4CN-BINACA和氰化物进行了定量分析,并提供了7例尸检病例的全面数据,其中5例确定为CUMYL-4CN-BINACA中毒。为了阐明代谢产物,将CUMYL-4CN-BINACA与混合的人肝细胞一起孵育长达5小时,对尿液样本进行了有无酶解的分析。数据通过配备安捷伦6550 QTOF的超高效液相色谱-高分辨率质谱(UHPLC-HRMS)以数据依赖模式采集。为了对CUMYL-4CN-BINACA进行定量分析,对血液样本进行沉淀处理后,通过液相色谱-串联质谱(LC-MS/MS)进行分析。氰化物通过气相色谱-顶空-氮磷检测(GC-顶空-NPD)进行测定。CUMYL-4CN-BINACA通过CYP450介导在4-丁基位置发生羟基化代谢,生成氰醇(M12),氰醇释放出游离氰化物形成醛中间体,最终生成4-羟基丁基CUMYL-BINACA(M11)和CUMYL-BINACA丁酸(M10)。其他次要代谢产物通过羟基化、二羟基化、N-脱烷基化和二氢二醇形成产生;观察到了葡萄糖醛酸化。一份尿液样本显示M10强度很高且有多种代谢产物;其他样本中代谢产物较少且丰度较低,1份样本未显示有代谢产物。CUMYL-4CN-BINACA血液浓度范围为0.1至8.3 ng/g,显示致命浓度和非致命浓度之间存在重叠。一份血液样本中含有0.36 μg/g氰化物。代谢过程中游离氰化物的释放令人担忧,因为它可能会诱发肝毒性。如前所述,CUMYL-BINACA丁酸是尿液中最丰富的生物标志物,但建议监测其他代谢产物,或者更好的是分析血液中的母体物质。

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