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A Study of Opiate, Opiate Metabolites and Antihistamines in Urine after Consumption of Cold Syrups by LC-MS/MS

Studying the origin of opiate and/or opiate metabolites in individual urine specimens after consumption of cold syrups is vital for patients, doctors, and law enforcement. A rapid liquid chromatography–tandem mass spectrometry method using “dilute-and-shoot” analysis without the need for extraction,...

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Autores principales: Yen, Yao-Te, Chang, Yin-Jue, Lai, Pin-Jung, Chang, Chi-Lun, Chen, Ting-Yueh, Chyueh, San-Chong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7070706/
https://www.ncbi.nlm.nih.gov/pubmed/32098143
http://dx.doi.org/10.3390/molecules25040972
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author Yen, Yao-Te
Chang, Yin-Jue
Lai, Pin-Jung
Chang, Chi-Lun
Chen, Ting-Yueh
Chyueh, San-Chong
author_facet Yen, Yao-Te
Chang, Yin-Jue
Lai, Pin-Jung
Chang, Chi-Lun
Chen, Ting-Yueh
Chyueh, San-Chong
author_sort Yen, Yao-Te
collection PubMed
description Studying the origin of opiate and/or opiate metabolites in individual urine specimens after consumption of cold syrups is vital for patients, doctors, and law enforcement. A rapid liquid chromatography–tandem mass spectrometry method using “dilute-and-shoot” analysis without the need for extraction, hydrolysis and/or derivatization has been developed and validated. The approach provides linear ranges of 2.5–1000 ng mL(−1) for 6-acetylmorphine, codeine, chlorpheniramine, and carbinoxamine, 2.5–800 ng mL(−1) for morphine and morphine-3-β-d-glucuronide, and 2.5–600 ng mL(−1) for morphine-6-β-d-glucuronide and codeine-6-β-d-glucuronide, with excellent correlation coefficients (R(2) > 0.995) and matrix effects (< 5%). Urine samples collected from the ten participants orally administered cold syrups were analyzed. The results concluded that participants consuming codeine-containing cold syrups did not routinely pass urine tests for opiates, and their morphine–codeine concentration ratios (M/C) were not always < 1. In addition, the distribution map of the clinical total concentration of the sum of morphine and codeine against the antihistamines (chlorpheniramine or carbinoxamine) were plotted for discrimination of people who used cold syrups. The 15 real cases have been studied by using M/C rule, cutoff value, and distribution map, further revealing a potential approach to determine opiate metabolite in urine originating from cold syrups.
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spelling pubmed-70707062020-03-19 A Study of Opiate, Opiate Metabolites and Antihistamines in Urine after Consumption of Cold Syrups by LC-MS/MS Yen, Yao-Te Chang, Yin-Jue Lai, Pin-Jung Chang, Chi-Lun Chen, Ting-Yueh Chyueh, San-Chong Molecules Article Studying the origin of opiate and/or opiate metabolites in individual urine specimens after consumption of cold syrups is vital for patients, doctors, and law enforcement. A rapid liquid chromatography–tandem mass spectrometry method using “dilute-and-shoot” analysis without the need for extraction, hydrolysis and/or derivatization has been developed and validated. The approach provides linear ranges of 2.5–1000 ng mL(−1) for 6-acetylmorphine, codeine, chlorpheniramine, and carbinoxamine, 2.5–800 ng mL(−1) for morphine and morphine-3-β-d-glucuronide, and 2.5–600 ng mL(−1) for morphine-6-β-d-glucuronide and codeine-6-β-d-glucuronide, with excellent correlation coefficients (R(2) > 0.995) and matrix effects (< 5%). Urine samples collected from the ten participants orally administered cold syrups were analyzed. The results concluded that participants consuming codeine-containing cold syrups did not routinely pass urine tests for opiates, and their morphine–codeine concentration ratios (M/C) were not always < 1. In addition, the distribution map of the clinical total concentration of the sum of morphine and codeine against the antihistamines (chlorpheniramine or carbinoxamine) were plotted for discrimination of people who used cold syrups. The 15 real cases have been studied by using M/C rule, cutoff value, and distribution map, further revealing a potential approach to determine opiate metabolite in urine originating from cold syrups. MDPI 2020-02-21 /pmc/articles/PMC7070706/ /pubmed/32098143 http://dx.doi.org/10.3390/molecules25040972 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Yen, Yao-Te
Chang, Yin-Jue
Lai, Pin-Jung
Chang, Chi-Lun
Chen, Ting-Yueh
Chyueh, San-Chong
A Study of Opiate, Opiate Metabolites and Antihistamines in Urine after Consumption of Cold Syrups by LC-MS/MS
title A Study of Opiate, Opiate Metabolites and Antihistamines in Urine after Consumption of Cold Syrups by LC-MS/MS
title_full A Study of Opiate, Opiate Metabolites and Antihistamines in Urine after Consumption of Cold Syrups by LC-MS/MS
title_fullStr A Study of Opiate, Opiate Metabolites and Antihistamines in Urine after Consumption of Cold Syrups by LC-MS/MS
title_full_unstemmed A Study of Opiate, Opiate Metabolites and Antihistamines in Urine after Consumption of Cold Syrups by LC-MS/MS
title_short A Study of Opiate, Opiate Metabolites and Antihistamines in Urine after Consumption of Cold Syrups by LC-MS/MS
title_sort study of opiate, opiate metabolites and antihistamines in urine after consumption of cold syrups by lc-ms/ms
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7070706/
https://www.ncbi.nlm.nih.gov/pubmed/32098143
http://dx.doi.org/10.3390/molecules25040972
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