In silico investigation of mitragynine and 7-hydroxymitragynine metabolism

Abstract Objective Mitragynine is the main active compound of Mitragyna speciose (Kratom in Thai). The understanding of mitragynine derivative metabolism in human body is required to develop effective detection techniques in case of drug abuse or establish an appropriate dosage in case of medicinal...

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Main Authors: Taweetham Limpanuparb, Rattha Noorat, Yuthana Tantirungrotechai
Format: Article
Language:English
Published: BMC 2019-07-01
Series:BMC Research Notes
Subjects:
Online Access:http://link.springer.com/article/10.1186/s13104-019-4461-3
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spelling doaj-40e1a721f2e14c55a2de72af41d955812020-11-25T03:32:07ZengBMCBMC Research Notes1756-05002019-07-011211510.1186/s13104-019-4461-3In silico investigation of mitragynine and 7-hydroxymitragynine metabolismTaweetham Limpanuparb0Rattha Noorat1Yuthana Tantirungrotechai2Science Division, Mahidol University International College, Mahidol UniversityDivision of Chemistry, Faculty of Science and Technology, Thammasat UniversityDivision of Chemistry, Faculty of Science and Technology, Thammasat UniversityAbstract Objective Mitragynine is the main active compound of Mitragyna speciose (Kratom in Thai). The understanding of mitragynine derivative metabolism in human body is required to develop effective detection techniques in case of drug abuse or establish an appropriate dosage in case of medicinal uses. This in silico study is based upon in vivo results in rat and human by Philipp et al. (J Mass Spectrom 44:1249–1261, 2009). Results Gas-phase structures of mitragynine, 7-hydroxymitragynine and their metabolites were obtained by quantum chemical method at B3LYP/6-311++G(d,p) level. Results in terms of standard Gibbs energies of reaction for all metabolic pathways are reported with solvation energy from SMD model. We found that 7-hydroxy substitution leads to changes in reactivity in comparison to mitragynine: position 17 is more reactive towards demethylation and conjugation with glucuronic acid and position 9 is less reactive towards conjugation with glucuronic acid. Despite the changes, position 9 is the most reactive for demethylation and position 17 is the most reactive for conjugation with glucuronic acid for both mitragynine and 7-hydroxymitragynine. Our results suggest that 7-hydroxy substitution could lead to different metabolic pathways and raise an important question for further experimental studies of this more potent derivative.http://link.springer.com/article/10.1186/s13104-019-4461-3Density functional theoryKratomMetabolismMitragynine7-Hydroxymitragynine
collection DOAJ
language English
format Article
sources DOAJ
author Taweetham Limpanuparb
Rattha Noorat
Yuthana Tantirungrotechai
spellingShingle Taweetham Limpanuparb
Rattha Noorat
Yuthana Tantirungrotechai
In silico investigation of mitragynine and 7-hydroxymitragynine metabolism
BMC Research Notes
Density functional theory
Kratom
Metabolism
Mitragynine
7-Hydroxymitragynine
author_facet Taweetham Limpanuparb
Rattha Noorat
Yuthana Tantirungrotechai
author_sort Taweetham Limpanuparb
title In silico investigation of mitragynine and 7-hydroxymitragynine metabolism
title_short In silico investigation of mitragynine and 7-hydroxymitragynine metabolism
title_full In silico investigation of mitragynine and 7-hydroxymitragynine metabolism
title_fullStr In silico investigation of mitragynine and 7-hydroxymitragynine metabolism
title_full_unstemmed In silico investigation of mitragynine and 7-hydroxymitragynine metabolism
title_sort in silico investigation of mitragynine and 7-hydroxymitragynine metabolism
publisher BMC
series BMC Research Notes
issn 1756-0500
publishDate 2019-07-01
description Abstract Objective Mitragynine is the main active compound of Mitragyna speciose (Kratom in Thai). The understanding of mitragynine derivative metabolism in human body is required to develop effective detection techniques in case of drug abuse or establish an appropriate dosage in case of medicinal uses. This in silico study is based upon in vivo results in rat and human by Philipp et al. (J Mass Spectrom 44:1249–1261, 2009). Results Gas-phase structures of mitragynine, 7-hydroxymitragynine and their metabolites were obtained by quantum chemical method at B3LYP/6-311++G(d,p) level. Results in terms of standard Gibbs energies of reaction for all metabolic pathways are reported with solvation energy from SMD model. We found that 7-hydroxy substitution leads to changes in reactivity in comparison to mitragynine: position 17 is more reactive towards demethylation and conjugation with glucuronic acid and position 9 is less reactive towards conjugation with glucuronic acid. Despite the changes, position 9 is the most reactive for demethylation and position 17 is the most reactive for conjugation with glucuronic acid for both mitragynine and 7-hydroxymitragynine. Our results suggest that 7-hydroxy substitution could lead to different metabolic pathways and raise an important question for further experimental studies of this more potent derivative.
topic Density functional theory
Kratom
Metabolism
Mitragynine
7-Hydroxymitragynine
url http://link.springer.com/article/10.1186/s13104-019-4461-3
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