Analytical Characterization of 3-MeO-PCP and 3-MMC in Seized Products and Biosamples: The Role of LC-HRAM-Orbitrap-MS and Solid Deposition GC-FTIR.
Giampietro Frison, Flavio Zancanaro, Samuela Frasson, Laura Quadretti, Michele Agnati, Francesca Vlassich, Giuseppe Gagliardi, Tania Maria Grazia Salerno, Paola Donato, Luigi Mondello
Frontiers in chemistry January 1, 2020 DOI: 10.3389/fchem.2020.618339 via PubMed
Summary
AI-generated from the abstractTwo powders seized by police were identified as the dissociative hallucinogen 3-MeO-PCP and the psychostimulant 3-MMC. Liquid chromatography–high-resolution mass spectrometry (LC-HRAM-Orbitrap-MS) assigned the elemental formulas but could not distinguish between positional isomers of each drug. Solid deposition gas chromatography–Fourier transform infrared spectroscopy (sd-GC-FTIR) unambiguously differentiated the isomers by matching experimental infrared spectra against a library, confirming 3-MeO-PCP and 3-MMC. 3-MeO-PCP was also detected in blood and urine from both subjects, along with dozens of its phase I and phase II metabolites, using LC-HRAM-Orbitrap-MS after deproteinization. sd-GC-FTIR further confirmed 3-MeO-PCP in biological samples. The combined techniques provided full structural characterization without reference standards.
Study at a glance
| Characteristics | Case study Case report Peer reviewed |
|---|---|
| Sample size | 2 |
| Population | Two subjects whose powders and biological specimens were analyzed |
| Keywords | 3-methoxyphencyclidine 3-methylmethcathinone Forensic toxicology Gas chromatography Non-fatal intoxication |
| Citations | 29 |
| Key finding | sd-GC-FTIR unambiguously differentiated positional isomers of MeO-PCP and MMC, while LC-HRAM-Orbitrap-MS alone could not. |
Abstract
Among the phencyclidine (PCP) and synthetic cathinone analogs present on the street market, 3-methoxyphencyclidine (3-MeO-PCP) is one of the most popular dissociative hallucinogen drugs, while 3-methylmethcathinone (3-MMC) is a commonly encountered psychostimulant. Numerous 3-MeO-PCP- and 3-MMC-related intoxication cases have been reported worldwide. Identification of the positional isomers of MeO-PCP and MMC families are particularly challenging for clinical and forensic laboratories; this is mostly due to their difficult chromatographic separation (particularly when using liquid chromatography-LC) and similar mass spectrometric behaviors. 3-MeO-PCP and 3-MMC were identified in two powders, detained by two subjects and seized by the police, by different analytical techniques, including liquid chromatography-high-resolution accurate-mass Orbitrap mass spectrometry (LC-HRAM-Orbitrap-MS), and solid deposition gas chromatography-Fourier transform infrared spectroscopy (sd-GC-FTIR). LC-HRAM-Orbitrap-MS allowed us to assign the elemental formulae C18H27NO (MeO-PCP) and C11H15NO (MMC) through accurate mass measurement of the two MH+ ions, and the comparison of experimental and calculated MH+ isotopic patterns. However, MH+ collision-induced product ions spectra were not conclusive in discriminating between the positional isomers [(3-MeO-PCP vs. 4-MeO-PCP) and (3-MMC vs. 4-MMC and 2-MMC)]. Likewise, sd-GC-FTIR easily allowed us to differentiate between the MeO-PCP and MMC positional isomers unambiguously, confirming the presence of 3-MeO-PCP and 3-MMC, due to the high-quality match factor of the experimental FTIR spectra against the target FTIR spectra of MeO-PCP and MMC isomers in a dedicated library. 3-MeO-PCP (in contrast to 3-MMC) was also detected in blood and urine samples of both subjects and analyzed in the context of routine forensic casework by LC-HRAM-Orbitrap-MS following a simple deproteinization step. In addition, this untargeted approach allowed us to detect dozens of phase I and phase II 3-MeO-PCP metabolites in all biological specimens. Analysis of the extracted samples by sd-GC-FTIR revealed the presence of 3-MeO-PCP, thus confirming the intake of such specific methoxy-PCP isomer in both cases. These results highlight the effectiveness of LC-HRAM-Orbitrap-MS and sd-GC-FTIR data in attaining full structural characterization of the psychoactive drugs, even in absence of reference standards, in both non-biological and biological specimens.