Identification of 2C-B in Hair by UHPLC-HRMS/MS. A Real Forensic Case
Abstract
:1. Introduction
2. Case History
3. Materials and Methods
3.1. Materials
3.1.1. Standards and Reagents
3.1.2. Hair Samples
3.2. Methods
3.2.1. Hair Sample Preparation
- Double washing with 5 mL of dichloromethane.
- The amount of hair dried (20 mg).
- Trituration of the hair using a Precellys Tissue Homogenizer (Bertin Instruments, Montigny-le-Bretonneux, Yvelines, France). After that, the hair samples were spiked with all the internal standards.
- Incubation of the triturated hair in 2 mL of methanol for t = 18 h, after sonication for t = 30 min.
- Ultracentrifugation at 14,000 rpm, the supernatant was decanted and gently evaporated to dryness prior to its reconstitution in 100 µL methanol in a microvial.
- Injection of 1 µL of the extract into the column head of the liquid chromatograph-mass spectrometer.
3.2.2. Instrumental Methods
3.2.3. Data Treatment: LOD and LOI
4. Results and Discussion
- to evaluate a simplification of the routine methodology for hair sample analysis in the INTCF laboratory. For this, a UHPLC-HRMS/MS method has been developed and applied to the same real case involving polyconsumption, which was previously analyzed by GC-MS; and, then,
- to identify 2C-B in the hair sample of the studied case, where the previous detection of ketamine suggested the potential presence of other NPS.
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Chemical Core | Name and Molecular Formula | R | R1 | R2 | R3 |
---|---|---|---|---|---|
Dimethoxy-phenylethylamines | 2C-B (C10H14BrNO2) | Br | CH3 | CH3 | H |
2C-D (C11H17NO2) | CH3 | CH3 | CH3 | H | |
2C-E (C12H19NO2) | CH2-CH3 | CH3 | CH3 | H | |
2C-H (C10H15NO2) | H | CH3 | CH3 | H | |
2C-I (C10H14INO2) | I | CH3 | CH3 | H | |
2C-N (C10H14N2O4) | NO2 | CH3 | CH3 | H | |
2C-P (C13H21NO2) | CH2-CH2-CH3 | CH3 | CH3 | H | |
C-T-2 (C12H19SNO2) | S-CH2-CH3 | CH3 | CH3 | H | |
2C-T-7 (C13H21SNO2) | S-CH2-CH2-CH3 | CH3 | CH3 | H | |
2C-T-2 (C12H18SNO2F) | S- CH2-CH2-F | CH3 | CH3 | H | |
bk 2C-B (C10H12BrNO3) | Br | CH3 | CH3 | O | |
bk 2C-I (C10H12INO3) | I | CH3 | CH3 | O | |
Methoxy- 2C-B (C11H15BrNO3) | Br | CH3 | CH3 | O-CH3 | |
2C-B-Fly (C12H14BrNO2) | Br | Furan | Furan | H | |
2C-E-Fly (C14H19NO2) | CH2-CH3 | Furan | Furan | H | |
2C-EF-Fly (C14H18NO2F) | CH2-CH2-F | Furan | Furan | H | |
2C-I-Fly (C12H14INO2) | I | Furan | Furan | H | |
2C-T-7-Fly (C15H21SNO2) | S-CH2-CH2-CH3 | Furan | Furan | H |
LOD | LOI |
---|---|
pg/mg | pg/mg |
Precursor [M-H] | Fragments (MS/MS) |
MS1 | MS2 |
10 | 50 |
MS/MS Fragments | ||||
---|---|---|---|---|
Number by Abundance | Formula [M-H]+ Products | Theoretical [M-H]+ Products | Measured [M-H]+ Products | Error Mass (ppm) |
1 * | [C10H12O2Br]+ | 243.0015 | (A) 243.0013 (B) 243.0013 | −0.82 |
2 * | [C9H9O2Br]+ | 227.9778 | (A) 227.9777 (B) 227.9778 | −0.44 0.00 |
3 * | [C10H12O2]+ | 164.0832 | (A) 164.0832 (B) 164.0832 | 0.00 |
4 * | [C8H6O2Br]+ | 212.9545 | (A) 212.9543 (B) 212.0543 | −0.94 |
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Matey, J.M.; López-Fernández, A.; García-Ruiz, C.; Montalvo, G.; Zapata, F.; Martínez, M.A. Identification of 2C-B in Hair by UHPLC-HRMS/MS. A Real Forensic Case. Toxics 2021, 9, 170. https://doi.org/10.3390/toxics9070170
Matey JM, López-Fernández A, García-Ruiz C, Montalvo G, Zapata F, Martínez MA. Identification of 2C-B in Hair by UHPLC-HRMS/MS. A Real Forensic Case. Toxics. 2021; 9(7):170. https://doi.org/10.3390/toxics9070170
Chicago/Turabian StyleMatey, José Manuel, Adrián López-Fernández, Carmen García-Ruiz, Gemma Montalvo, Félix Zapata, and María A. Martínez. 2021. "Identification of 2C-B in Hair by UHPLC-HRMS/MS. A Real Forensic Case" Toxics 9, no. 7: 170. https://doi.org/10.3390/toxics9070170
APA StyleMatey, J. M., López-Fernández, A., García-Ruiz, C., Montalvo, G., Zapata, F., & Martínez, M. A. (2021). Identification of 2C-B in Hair by UHPLC-HRMS/MS. A Real Forensic Case. Toxics, 9(7), 170. https://doi.org/10.3390/toxics9070170