4.7 Article

Transformation of berberine to its demethylated metabolites by the CYP51 enzyme in the gut microbiota

期刊

JOURNAL OF PHARMACEUTICAL ANALYSIS
卷 11, 期 5, 页码 628-637

出版社

ELSEVIER
DOI: 10.1016/j.jpha.2020.10.001

关键词

Berberine; Biotransformation; Gut microbiota; CYP51; Demethylated metabolite

资金

  1. CAMS Innovation Fund for Medical Sciences (CIFMS, China) [2016-I2M-3-011]
  2. National Natural Science Foundation of China [81803613, 81973290]
  3. Beijing Key Laboratory of Non-Clinical Drug Metabolism and PK/PD study (China) [Z141102004414062]
  4. Beijing Natural Sciences Fund Key Projects [7181007]
  5. National Megaproject for Innovative Drugs [2018ZX09711001-002-0 02]

向作者/读者索取更多资源

This study revealed a new transformation mechanism of BBR by demethylation in the gut microbiota through the action of the CYP51 enzyme, shedding light on the enhancement of its intestinal absorption.
Berberine (BBR) is an isoquinoline alkaloid extracted from Coptis chinensis that improves diabetes, hyperlipidemia and inflammation. Due to the low oral bioavailability of BBR, its mechanism of action is closely related to the gut microbiota. This study focused on the CYP51 enzyme of intestinal bacteria to elucidate a new mechanism of BBR transformation by demethylation in the gut microbiota through multiple analytical techniques. First, the docking of BBR and CYP51 was performed; then, the pharmacokinetics of BBR was determined in ICR mice in vivo, and the metabolism of BBR in the liver, kidney, gut microbiota and single bacterial strains was examined in vitro. Moreover, 16S rRNA analysis of ICR mouse feces indicated the relationship between BBR and the gut microbiota. Finally, recombinant E. coli containing cyp51 gene was constructed and the CYP51 enzyme lysate was induced to express. The metabolic characteristics of BBR were analyzed in the CYP51 enzyme lysate system. The results showed that CYP51 in the gut microbiota could bind stably with BBR, and the addition of voriconazole (a specific inhibitor of CYP51) slowed down the metabolism of BBR, which prevented the production of the demethylated metabolites thalifendine and berberrubine. This study demonstrated that CYP51 promoted the demethylation of BBR and enhanced its intestinal absorption, providing a new method for studying the metabolic transformation mechanism of isoquinoline alkaloids in vivo. (c) 2020 Xi'an Jiaotong University. Production and hosting by Elsevier B.V. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).

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