| Literature DB >> 27869223 |
Heng Fang1, Aihua Zhang1, Jingbo Yu1, Liang Wang1, Chang Liu1, Xiaohang Zhou1, Hui Sun1, Qi Song1, Xijun Wang1,2.
Abstract
Scoparone (6,7-dimethoxycoumarin) is the representative ingredient of Yinchenhao (Artemisia capillaris Thunb.) which is a famous Chinese medicinal herb and shows favorable efficacy for all kinds of liver disease, specifically for the treatment of Yanghuang syndrome (YHS). The precise molecular mechanism concerning the action of scoparone on YHS is yet to be fully elucidated. The aim of the present study was to determine the mechanism of scoparone and evaluate its efficacy on metabolite levels. The differential expression of metabolites responsible for the pharmacological effects of scoparone was characterized and the protection effect of scoparone against this disease. Using multivariate statistical analysis, 33 biomarkers were identified using precise MS/MS and play an important role in the regulation of key metabolic pathways associated with liver disease. In addition, pathological results also showed consistent changes in the YHS model group and after treatment with scoparone, both the metabolic profile and histopathology resembled that of normal level, which suggesting favorable efficacy over the observed time period. The present work indicated that a metabolomics platform provided a new insight into understanding the mechanisms of action of natural medicines such as scoparone.Entities:
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Year: 2016 PMID: 27869223 PMCID: PMC5116618 DOI: 10.1038/srep37519
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Pattern recognition analysis of the UPLC/MS spectra of urine samples.
() Control group and () YHS group in positive mode (a) and negative mode (b). Fingerprint of the control group and YHS group in positive mode (c) and negative model (d). Heat map visualization for YHS mice in positive mode and negative mode (e). The top 15 significant features of the metabolic markers based on the VIP projection (f).
Figure 2Identification of the chemical structures and mass fragments of tyramine glucuronide.
Figure 3Multivariate analysis of UPLC/MS datasets acquired for different group samples.
Score plots for the () Control group, () YHS group and () Scoparone groups in positive mode (a) and negative mode (b). Heat map visualization for the treatment of scoparone on YHS in positive mode and negative mode (c).
Figure 4An overview of the perturbed metabolic networks in response to YHS according to KEGG analysis.
Figure 5Scoparone regulates marker metabolites of putative effects based on KEGG analysis.
Figure 6The proposed mechanism of scoparone protection against YHS.