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Characterization of 17 unknown ketamine manufacturing by-product impurities by UHPLC-QTOF-MS.

Cui-Mei Liu, Zhen-Dong Hua, Wei Jia, Pei-Pei Liu, Yu Xu

Drug testing and analysis August 1, 2024 DOI: 10.1002/dta.3336 via PubMed

Summary

AI-generated from the abstract

Seventeen impurities characteristic of the ketamine manufacturing process were identified and characterized in 150 seized ketamine samples using ultra-high-performance liquid chromatography-quadrupole-time of flight (UHPLC-Q-TOF). Impurities were selected if present in over 10% of samples, contained at least one nitrogen, had unsaturation greater than 5, and remained stable in solvent for 48 hours. All 17 impurities shared a deschloroketamine (DCK) skeleton with additional chlorine, hydroxyl, methyl, cyclohexane, or o-chlorophenyl cyclopentyl ketone substituents. Their structures were tentatively elucidated based on the synthetic route and mass spectrometry fragmentation patterns. These impurities are routinely used for profiling seized ketamine samples to provide tactical intelligence for law enforcement.

Study at a glance

Characteristics Observational study Peer reviewed
Sample size 150
Population Seized ketamine samples
Topics Ketamine
Keywords Uhplc‐q‐tof Characterization Impurity Profiling
Citations 7
Key finding Seventeen impurities characteristic of ketamine manufacture were identified and characterized, all sharing a deschloroketamine skeleton with various substituents.

Abstract

This study initially reported the selection and characterization of 17 unknown impurities attributed to the manufacture process of ketamine. A total of 150 seized ketamine samples were investigated through ultra-high-performance liquid chromatography-quadrupole-time of flight (UHPLC-Q-TOF). Seventeen characteristic impurities were selected in accordance with four criteria: The compound was detected in over 10% of all 150 seized ketamine samples, the compound had at least one nitrogen, the unsaturation of the compound was more than 5, and the compound was stable in the dilution solvent solution for 48 h. The accurate masses of the protonated molecules and product ions of the target impurities were obtained based on the full scan mode and the product ion mode of Q-TOF, respectively. Lastly, the possible structures of the above impurities were tentatively elucidated in accordance with the synthetic route of ketamine, protonated molecules, and MS2 product ions. All 17 impurities had the same skeleton of deschloroketamine (DCK), but were substituted with additional chlorine, hydroxyl, methyl, cyclohexane, and o-chlorophenyl cyclopentyl ketone substituents. Under the electrospray ionization (ESI), the above impurities showed similar characteristic fragment ions through the dissociation of the CH3NH2, C2H6NH, H2O, CO, C2H4O, C4H6, and C2H2 moieties. The above impurities have been routinely used for the profiling analysis of seized ketamine samples in the National Narcotics Laboratory of China and employed to establish the tactical intelligence for law enforcement agencies.

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