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Published in: Forensic Toxicology 1/2015

01-01-2015 | Original Article

Hair analysis for JWH-018, JWH-122, and JWH-210 after passive in vivo exposure to synthetic cannabinoid smoke

Authors: Melanie Hutter, Bjoern Moosmann, Volker Auwärter, Merja A. Neukamm

Published in: Forensic Toxicology | Issue 1/2015

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Abstract

Hair analysis is often used to confirm abstinence from drug use. However, interpretation of hair analysis results can be challenging, particularly with regard to smoked substances like synthetic cannabinoids, because hair can be contaminated by side-stream smoke. In this study, we measured the concentrations of synthetic cannabinoids in scalp hair after exposure to side-stream smoke from a cigarette containing the synthetic cannabinoids JWH-018, JWH-122, and JWH-210. Three participants exposed their hair to the side-stream smoke once each working day for 3 weeks to mimic realistic conditions experienced by consumers of these drugs. Two other participants exposed their hair once to the side-stream smoke of one cigarette. Scuba regulators with external air supply were used to avoid inhalation of smoke. Hair segments and wash solutions were analyzed by liquid chromatography–tandem mass spectrometry. The highest measured concentrations were 70 pg/mg of JWH-018, 260 pg/mg of JWH-122, and 950 pg/mg of JWH-210 in distal hair segments collected at the end of the exposure period. At 2–3 weeks after the end of the repeated exposure, all three synthetic cannabinoids were detected in the hair samples of both participants with longer hair. In these samples, the ratio of cannabinoid amount in acetone wash to that in hair was below 0.5 for all synthetic cannabinoids, which could be interpreted as evidence of consumption. However, with the nonconsumption of synthetic cannabinoids by our study participants being confirmed by urine testing, it is apparent that even high substance concentrations in hair samples do not prove consumption and can be explained by external contamination after contact with synthetic cannabinoids alone.
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Literature
1.
go back to reference Tsanaclis L, Wicks JF (2008) Differentiation between drug use and environmental contamination when testing for drugs in hair. Forensic Sci Int 176:19–22PubMedCrossRef Tsanaclis L, Wicks JF (2008) Differentiation between drug use and environmental contamination when testing for drugs in hair. Forensic Sci Int 176:19–22PubMedCrossRef
2.
go back to reference Moosmann B, Roth N, Auwärter V (2014) Hair analysis for THCA-A, THC and CBN after passive in vivo exposure to marijuana smoke. Drug Test Anal 6:119–125PubMedCrossRef Moosmann B, Roth N, Auwärter V (2014) Hair analysis for THCA-A, THC and CBN after passive in vivo exposure to marijuana smoke. Drug Test Anal 6:119–125PubMedCrossRef
3.
go back to reference Auwärter V, Wohlfarth A, Traber J, Thieme D, Weinmann W (2010) Hair analysis for Δ9-tetrahydrocannabinolic acid A—new insights into the mechanism of drug incorporation of cannabinoids into hair. Forensic Sci Int 196:10–13PubMedCrossRef Auwärter V, Wohlfarth A, Traber J, Thieme D, Weinmann W (2010) Hair analysis for Δ9-tetrahydrocannabinolic acid A—new insights into the mechanism of drug incorporation of cannabinoids into hair. Forensic Sci Int 196:10–13PubMedCrossRef
4.
go back to reference Moosmann B, Roth N, Hastedt M, Jacobsen-Bauer A, Pragst F, Auwärter V (2014) Cannabinoid findings in children hair––what do they really tell us? An assessment in the light of three different analytical methods with focus on interpretation of Δ9-tetrahydrocannabinolic acid A concentrations. Drug Test Anal. doi:10.1002/dta.1692 Moosmann B, Roth N, Hastedt M, Jacobsen-Bauer A, Pragst F, Auwärter V (2014) Cannabinoid findings in children hair––what do they really tell us? An assessment in the light of three different analytical methods with focus on interpretation of Δ9-tetrahydrocannabinolic acid A concentrations. Drug Test Anal. doi:10.​1002/​dta.​1692
5.
go back to reference Hutter M, Kneisel S, Auwärter V, Neukamm MA (2012) Determination of 22 synthetic cannabinoids in human hair by liquid chromatography-tandem mass spectrometry. J Chromatogr B 903:95–101CrossRef Hutter M, Kneisel S, Auwärter V, Neukamm MA (2012) Determination of 22 synthetic cannabinoids in human hair by liquid chromatography-tandem mass spectrometry. J Chromatogr B 903:95–101CrossRef
6.
go back to reference Salomone A, Gerace E, D’Urso F, Di Corcia D, Vincenti M (2012) Simultaneous analysis of several synthetic cannabinoids, THC, CBD and CBN, in hair by ultra-high performance liquid chromatography tandem mass spectrometry. Method validation and application to real samples. J Mass Spectrom 47:604–610PubMedCrossRef Salomone A, Gerace E, D’Urso F, Di Corcia D, Vincenti M (2012) Simultaneous analysis of several synthetic cannabinoids, THC, CBD and CBN, in hair by ultra-high performance liquid chromatography tandem mass spectrometry. Method validation and application to real samples. J Mass Spectrom 47:604–610PubMedCrossRef
7.
go back to reference Kim J, In S, Park Y, Park M, Kim E, Lee S (2013) Deposition of JWH-018, JWH-073 and their metabolites in hair and effect of hair pigmentation. Anal Bioanal Chem 405:9769–9778PubMedCrossRef Kim J, In S, Park Y, Park M, Kim E, Lee S (2013) Deposition of JWH-018, JWH-073 and their metabolites in hair and effect of hair pigmentation. Anal Bioanal Chem 405:9769–9778PubMedCrossRef
8.
go back to reference Salomone A, Luciano C, Di Corcia D, Gerace E, Vincenti M (2014) Hair analysis as a tool to evaluate the prevalence of synthetic cannabinoids in different populations of drug consumers. Drug Test Anal 6:126–134PubMedCrossRef Salomone A, Luciano C, Di Corcia D, Gerace E, Vincenti M (2014) Hair analysis as a tool to evaluate the prevalence of synthetic cannabinoids in different populations of drug consumers. Drug Test Anal 6:126–134PubMedCrossRef
9.
go back to reference Gottardo R, Sorio D, Musile G, Trapani E, Seri C, Serpelloni G, Tagliaro F (2013) Screening for synthetic cannabinoids in hair by using LC-QTOF MS: a new and powerful approach to study the penetration of these new psychoactive substances in the population. Med Sci Law 54:22–27PubMedCrossRef Gottardo R, Sorio D, Musile G, Trapani E, Seri C, Serpelloni G, Tagliaro F (2013) Screening for synthetic cannabinoids in hair by using LC-QTOF MS: a new and powerful approach to study the penetration of these new psychoactive substances in the population. Med Sci Law 54:22–27PubMedCrossRef
11.
go back to reference Cooper GA, Kronstrand R, Kintz P (2012) Society of hair testing guidelines for drug testing in hair. Forensic Sci Int 218:20–24PubMedCrossRef Cooper GA, Kronstrand R, Kintz P (2012) Society of hair testing guidelines for drug testing in hair. Forensic Sci Int 218:20–24PubMedCrossRef
12.
go back to reference Thorspecken J, Skopp G, Pötsch L (2004) In vitro contamination of hair by marijuana smoke. Clin Chem 50:596–602PubMedCrossRef Thorspecken J, Skopp G, Pötsch L (2004) In vitro contamination of hair by marijuana smoke. Clin Chem 50:596–602PubMedCrossRef
13.
go back to reference Miller EI, Murray GJ, Rollins DE, Tiffany ST, Wilkins DG (2011) Validation of a liquid chromatography-tandem mass spectrometry method for the detection of nicotine biomarkers in hair and an evaluation of wash procedures for removal of environmental nicotine. J Anal Toxicol 35:321–332PubMedCrossRef Miller EI, Murray GJ, Rollins DE, Tiffany ST, Wilkins DG (2011) Validation of a liquid chromatography-tandem mass spectrometry method for the detection of nicotine biomarkers in hair and an evaluation of wash procedures for removal of environmental nicotine. J Anal Toxicol 35:321–332PubMedCrossRef
14.
go back to reference Auwärter V, Dresen S, Weinmann W, Mueller M, Puetz M, Ferreiros N (2009) ‘Spice’ and other herbal blends: harmless incense or cannabinoid designer drugs? J Mass Spectrom 44:832–837PubMedCrossRef Auwärter V, Dresen S, Weinmann W, Mueller M, Puetz M, Ferreiros N (2009) ‘Spice’ and other herbal blends: harmless incense or cannabinoid designer drugs? J Mass Spectrom 44:832–837PubMedCrossRef
15.
go back to reference Nakajima J, Takahashi M, Seto T, Kanai C, Suzuki J, Yoshida M, Hamano T (2011) Identification and quantitation of two benzoylindoles AM-694 and (4-methoxyphenyl)(1-pentyl-1H-indol-3-yl)methanone, and three cannabimimetic naphthoylindoles JWH-210, JWH-122, and JWH-019 as adulterants in illegal products obtained via the Internet. Forensic Toxicol 29:95–110CrossRef Nakajima J, Takahashi M, Seto T, Kanai C, Suzuki J, Yoshida M, Hamano T (2011) Identification and quantitation of two benzoylindoles AM-694 and (4-methoxyphenyl)(1-pentyl-1H-indol-3-yl)methanone, and three cannabimimetic naphthoylindoles JWH-210, JWH-122, and JWH-019 as adulterants in illegal products obtained via the Internet. Forensic Toxicol 29:95–110CrossRef
16.
go back to reference Uchiyama N, Kikura-Hanajiri R, Kawahara N, Goda Y (2009) Identification of a cannabimimetic indole as a designer drug in a herbal product. Forensic Toxicol 27:61–66CrossRef Uchiyama N, Kikura-Hanajiri R, Kawahara N, Goda Y (2009) Identification of a cannabimimetic indole as a designer drug in a herbal product. Forensic Toxicol 27:61–66CrossRef
17.
go back to reference Kneisel S, Auwärter V (2012) Analysis of 30 synthetic cannabinoids in serum by liquid chromatography-electrospray ionization tandem mass spectrometry after liquid-liquid extraction. J Mass Spectrom 47:825–835PubMedCrossRef Kneisel S, Auwärter V (2012) Analysis of 30 synthetic cannabinoids in serum by liquid chromatography-electrospray ionization tandem mass spectrometry after liquid-liquid extraction. J Mass Spectrom 47:825–835PubMedCrossRef
18.
go back to reference Hutter M, Broecker S, Kneisel S, Auwärter V (2012) Identification of the major urinary metabolites in man of seven synthetic cannabinoids of the aminoalkylindole type present as adulterants in ‘herbal mixtures’ using LC-MS-MS techniques. J Mass Spectrom 47:54–65PubMedCrossRef Hutter M, Broecker S, Kneisel S, Auwärter V (2012) Identification of the major urinary metabolites in man of seven synthetic cannabinoids of the aminoalkylindole type present as adulterants in ‘herbal mixtures’ using LC-MS-MS techniques. J Mass Spectrom 47:54–65PubMedCrossRef
19.
go back to reference Moosmann B, Valcheva T, Neukamm MA, Angerer V, Auwärter V (2014) Hair analysis of synthetic cannabinoids: does handling of herbal mixtures affect the analyst’s hair concentration? Forensic Toxicol. doi:10.1007/s11419-014-0244-7 Moosmann B, Valcheva T, Neukamm MA, Angerer V, Auwärter V (2014) Hair analysis of synthetic cannabinoids: does handling of herbal mixtures affect the analyst’s hair concentration? Forensic Toxicol. doi:10.​1007/​s11419-014-0244-7
20.
go back to reference Pragst F, Balikova MA (2006) State of the art in hair analysis for detection of drug and alcohol abuse. Clin Chim Acta 370:17–49PubMedCrossRef Pragst F, Balikova MA (2006) State of the art in hair analysis for detection of drug and alcohol abuse. Clin Chim Acta 370:17–49PubMedCrossRef
21.
go back to reference Lindigkeit R, Boehme A, Eiserloh I, Luebbecke M, Wiggermann M, Ernst L, Beuerle T (2009) Spice: a never ending story? Forensic Sci Int 191:58–63PubMedCrossRef Lindigkeit R, Boehme A, Eiserloh I, Luebbecke M, Wiggermann M, Ernst L, Beuerle T (2009) Spice: a never ending story? Forensic Sci Int 191:58–63PubMedCrossRef
Metadata
Title
Hair analysis for JWH-018, JWH-122, and JWH-210 after passive in vivo exposure to synthetic cannabinoid smoke
Authors
Melanie Hutter
Bjoern Moosmann
Volker Auwärter
Merja A. Neukamm
Publication date
01-01-2015
Publisher
Springer Japan
Published in
Forensic Toxicology / Issue 1/2015
Print ISSN: 1860-8965
Electronic ISSN: 1860-8973
DOI
https://doi.org/10.1007/s11419-014-0251-8

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