4.7 Article

Intestinal metabolism and absorption mechanism of multi-components in Gaultheria leucocarpa var. yunnanensis- An assessment using in situ and in vitro models, comparing gut segments in pathological with physiological conditions

期刊

JOURNAL OF ETHNOPHARMACOLOGY
卷 286, 期 -, 页码 -

出版社

ELSEVIER IRELAND LTD
DOI: 10.1016/j.jep.2021.114844

关键词

Gaultheria leucocarpa var.Yunnanensis; P-glycoprotein; Absorption mechanism; Everted gut sacs; In situ single-pass intestinal perfusion

资金

  1. National Natural Science Foundation of China [82074121, 82104531, 81573692, 81001697]
  2. Beijing Association for Science and Technology [Z201100005420005]

向作者/读者索取更多资源

This study investigated the intestinal metabolism, absorption properties, and mechanism of the anti-rheumatic arthritis fraction (ARF) extracted from Dianbaizhu in vitro and in situ models. The results showed that the absorption of ARF in the small intestine was significantly stronger than in the colon, with the best absorption sites identified as duodenum and ileum in normal and model rats, respectively. Additionally, it was found that MSTG-B, MSTG-A, and Gaultherin were likely to be substrates of P-glycoprotein, while other ingredients were not.
Ethnopharmacological relevance: Dianbaizhu (Gaultheria leucocarpa var. yunnanensis) as a Chinese folk medicine exerts significant treatment effects on rheumatoid arthritis (RA) with a long historical time. Our previous reports showed that the anti-rheumatic arthritis fraction (ARF) extracted and enriched from Dianbaizhu possessed good druggability, which was better than its single active ingredients. However, the intestinal transport characteristics and mechanism of ARF have not been elucidated to date. Aim of the study: In order to illustrate the role of active ingredients of ARF in alleviating RA and promoting the development of dosage forms, the intestinal metabolism, absorption properties and mechanism of ARF in vitro and in situ models were investigated. Materials and methods: Firstly, after incubating with 4 intestinal segments (duodenum, jejunum, ileum, and colon), 7 key components in ARF, including MATG-B, (+)-catechin, MSTG-A, Gaultherin, chlorogenic acid, quercetin, and kaempferol were quantitatively analyzed by a high-performance liquid chromatography (HPLC). Secondly, combining the physiological and pathological rats, the in situ single-pass intestinal perfusion and in vitro everted gut sacs of rats were performed to investigate the absorption features and transport mechanisms of ARF using HPLC and HPLC-Q-TOF-MS/MS. Subsequently, in situ studies were employed to determine the effect of P-glycoprotein (P-gp) inhibitor (verapamil) on the transport characteristics of ARF in RA model rats. Results: Comparing the absorption parameters of ARF incubated in different intestinal segments, data showed that the absorption of ARF in the small intestine was significantly stronger than that of the colon (P < 0.01). The number of characterized prototype components was subjected to the incubation time, drug concentration and rat body condition, but not the intestinal segments. There were no significant differences in the number of metabolites among different intestinal segments, administration concentrations and incubation time. The best small intestinal absorption site of ARF was duodenum and ileum in normal and model rats, respectively. The Peff values of 7 index compounds were all higher than 0.2 x 10(-4)cm/s, and the Fa values of 7 index compounds were all greater than 20% in the in situ perfusion investigation. The results showed that MSTG-B, MSTG-A and Gaultherin were likely to be substrates of P-gp as verapamil significantly enhanced their P-eff and K-a values, while other ingredients were not P-gp substrates. Conclusions: The intestinal membrane permeability of ARF was good. Its intestinal absorption mechanisms mainly involved active transportation processes and passive diffusion. Besides, this report provided data support and basis for clinical development, bioavailability improvement and formulation design.

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