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Comprehensive Profiling of Mangiferin Metabolites In Vivo and In Vitro Based on the “Drug Metabolite Clusters” Analytical Strategy

[Image: see text] Mangiferin, a natural flavonoid compound with multiple biological activities (e.g., anti-inflammatory, anti-oxidant, anti-diabetic, and anti-tumor), has gained increased research interest in recent years. Nevertheless, the metabolic processing of mangiferin has not been fully inves...

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Autores principales: Zhou, Hongyan, Song, Shuyi, Lan, Xianming, Li, Yanan, Yuan, Xiaoqing, Yang, Jingyi, Li, Min, Cao, Ting, Zhang, Jiayu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10035007/
https://www.ncbi.nlm.nih.gov/pubmed/36969398
http://dx.doi.org/10.1021/acsomega.2c07089
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author Zhou, Hongyan
Song, Shuyi
Lan, Xianming
Li, Yanan
Yuan, Xiaoqing
Yang, Jingyi
Li, Min
Cao, Ting
Zhang, Jiayu
author_facet Zhou, Hongyan
Song, Shuyi
Lan, Xianming
Li, Yanan
Yuan, Xiaoqing
Yang, Jingyi
Li, Min
Cao, Ting
Zhang, Jiayu
author_sort Zhou, Hongyan
collection PubMed
description [Image: see text] Mangiferin, a natural flavonoid compound with multiple biological activities (e.g., anti-inflammatory, anti-oxidant, anti-diabetic, and anti-tumor), has gained increased research interest in recent years. Nevertheless, the metabolic processing of mangiferin has not been fully investigated. In this study, a rapid and efficient analytical strategy named “Drug Metabolite Clusters” was applied for comprehensive profiling of mangiferin metabolites in rat plasma, urine, and feces samples in vivo following oral administration and liver microsomes in vitro. First, the biological samples were pretreated with methanol, acetonitrile, and solid phase extraction (SPE) for further liquid chromatography–mass spectrometry (LC–MS) analysis. Second, the raw data were acquired using ultra-high performance liquid chromatography quadrupole exactive orbitrap high-resolution mass spectrometry (UHPLC-Q-Exactive Orbitrap HRMS) under the positive and negative full-scan/dd MS(2) modes. Third, mangiferin and its basic metabolites (norathyriol, trihydroxyxanthone, and dihydroxyxanthone) were selected as mangiferin metabolite cluster centers by referring to the relevant literature. Subsequently, according to the pyrolysis law of mass spectrometry, literature reports, and reference material comparison, especially the diagnostic product ions (DPIs), the candidate metabolites were accurately preliminarily identified, and mangiferin metabolite clusters based on metabolite cluster center changes were formed. As a result, a total of 67 mangiferin metabolites (mangiferin included) were detected, including 29 in plasma, 48 in urine, 12 in feces, and 6 in liver microsomes. Among them, trihydroxyxanthones were first detected in rat urine samples after oral mangiferin. We found that mangiferin mainly underwent deglucosylation, dehydroxylation, methylation, glucuronidation, sulfation, and other composite reactions in rats. Herein, we have elucidated the metabolites and metabolic pathways of mangiferin in vivo and in vitro, which provided an essential theoretical basis for further pharmacological studies of mangiferin and a comprehensive research method for the identification of drug metabolites.
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spelling pubmed-100350072023-03-24 Comprehensive Profiling of Mangiferin Metabolites In Vivo and In Vitro Based on the “Drug Metabolite Clusters” Analytical Strategy Zhou, Hongyan Song, Shuyi Lan, Xianming Li, Yanan Yuan, Xiaoqing Yang, Jingyi Li, Min Cao, Ting Zhang, Jiayu ACS Omega [Image: see text] Mangiferin, a natural flavonoid compound with multiple biological activities (e.g., anti-inflammatory, anti-oxidant, anti-diabetic, and anti-tumor), has gained increased research interest in recent years. Nevertheless, the metabolic processing of mangiferin has not been fully investigated. In this study, a rapid and efficient analytical strategy named “Drug Metabolite Clusters” was applied for comprehensive profiling of mangiferin metabolites in rat plasma, urine, and feces samples in vivo following oral administration and liver microsomes in vitro. First, the biological samples were pretreated with methanol, acetonitrile, and solid phase extraction (SPE) for further liquid chromatography–mass spectrometry (LC–MS) analysis. Second, the raw data were acquired using ultra-high performance liquid chromatography quadrupole exactive orbitrap high-resolution mass spectrometry (UHPLC-Q-Exactive Orbitrap HRMS) under the positive and negative full-scan/dd MS(2) modes. Third, mangiferin and its basic metabolites (norathyriol, trihydroxyxanthone, and dihydroxyxanthone) were selected as mangiferin metabolite cluster centers by referring to the relevant literature. Subsequently, according to the pyrolysis law of mass spectrometry, literature reports, and reference material comparison, especially the diagnostic product ions (DPIs), the candidate metabolites were accurately preliminarily identified, and mangiferin metabolite clusters based on metabolite cluster center changes were formed. As a result, a total of 67 mangiferin metabolites (mangiferin included) were detected, including 29 in plasma, 48 in urine, 12 in feces, and 6 in liver microsomes. Among them, trihydroxyxanthones were first detected in rat urine samples after oral mangiferin. We found that mangiferin mainly underwent deglucosylation, dehydroxylation, methylation, glucuronidation, sulfation, and other composite reactions in rats. Herein, we have elucidated the metabolites and metabolic pathways of mangiferin in vivo and in vitro, which provided an essential theoretical basis for further pharmacological studies of mangiferin and a comprehensive research method for the identification of drug metabolites. American Chemical Society 2023-03-09 /pmc/articles/PMC10035007/ /pubmed/36969398 http://dx.doi.org/10.1021/acsomega.2c07089 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Zhou, Hongyan
Song, Shuyi
Lan, Xianming
Li, Yanan
Yuan, Xiaoqing
Yang, Jingyi
Li, Min
Cao, Ting
Zhang, Jiayu
Comprehensive Profiling of Mangiferin Metabolites In Vivo and In Vitro Based on the “Drug Metabolite Clusters” Analytical Strategy
title Comprehensive Profiling of Mangiferin Metabolites In Vivo and In Vitro Based on the “Drug Metabolite Clusters” Analytical Strategy
title_full Comprehensive Profiling of Mangiferin Metabolites In Vivo and In Vitro Based on the “Drug Metabolite Clusters” Analytical Strategy
title_fullStr Comprehensive Profiling of Mangiferin Metabolites In Vivo and In Vitro Based on the “Drug Metabolite Clusters” Analytical Strategy
title_full_unstemmed Comprehensive Profiling of Mangiferin Metabolites In Vivo and In Vitro Based on the “Drug Metabolite Clusters” Analytical Strategy
title_short Comprehensive Profiling of Mangiferin Metabolites In Vivo and In Vitro Based on the “Drug Metabolite Clusters” Analytical Strategy
title_sort comprehensive profiling of mangiferin metabolites in vivo and in vitro based on the “drug metabolite clusters” analytical strategy
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10035007/
https://www.ncbi.nlm.nih.gov/pubmed/36969398
http://dx.doi.org/10.1021/acsomega.2c07089
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